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Im Rahmen dieser Arbeit wurden grundlegende Eigenschaften von GEM-Verstärkungsstrukturen untersucht. Dies waren der Einfluss des Alignmenteffektes auf die Reproduzierbarkeit von Messungen, die Elektronenextraktionseffizienz von GEMs im allgemeinen und die Auswirkungen von Druckschwankungen auf die Gasverstärkung. Weiterhin wurden verschiedene vierlagige GEM-Verstärkungssysteme mit einer MP-GEM an erster Stelle in Hinblick auf Ionenrückfluss und Energieauflösung untersucht.
Der Alignmenteffekt ist noch nicht vollkommen verstanden und verlangt weitere Untersuchungen. Was aber definitiv gesagt werden kann ist, dass das Drehen der GEMs um 90° die Reproduzierbarkeit der Messergebnisse sicherstellt.
Die unterschiedlichen Elektronenextraktionseffizienzen der verschiedenen GEM-Typen sind noch unverstanden. Auch wenn die grundsätzliche Zunahme der Extraktion mit zunehmenden Transferfeld verständlich ist, so bleibt vor allem das Verhalten einer LP-GEM in diesem Kontext bis jetzt unerklärlich.
Die Versuche mit einer MP-GEM an erster Stelle einer vierlagigen Verstärkungsstruktur haben sich als keine Verbesserung im Vergleich zu den S-Konfigurationen herausgestellt. Auch wenn manche gefundenen Einstellungen die Kriterien von einem IBF von weniger als 1 % und einem σ(55Fe) von weniger als 12 % gleichzeitig erfüllen, liegen diese Messpunkte so knapp an den definierten Grenzen, dass sie nicht für den Betrieb in der Spurendriftkammer von ALICE geeignet sind. Eine Erkenntnis, die trotzdem gewonnen werden konnte, ist, dass sich das Verhalten von verschiedenen Konfigurationen verstehen lässt. So ist die beste untersuchte Konfiguration die MP-LP-LP-S-Konfiguration gewesen, danach folgte die MP-S-LP-S und als schlechteste hat die MP-S-LP-SP-Konfiguration abgeschnitten. Dies ist genau die gleiche Reihenfolge, wie sie auch bei den S-Konfigurationen auftritt: S-LP-LP-S, dann S-S-LP-S und danach S-S-LP-SP. Ein wichtiger Schritt in einem guten Kompromiss zwischen Ionenrückfluss und σ(55Fe), scheinen zwei LP-GEMs an zweiter und dritter Stelle zu sein und weniger der Lochabstand der letzten GEM.
Die Druckabhängigkeit der Gasverstärkung hat einen großen Einfluss auf die Verstärkung und damit auf die Reproduzierbarkeit von Messungen. Bei einem Höhenunterschied von ca. 400 m ergibt sich eine Änderung der Verstärkung von ca. 35 %. Zusätzlich wird dieser Effekt von lokalen Wetterbedingungen überlagert. Der Einfluss des Luftdruckes kann jedoch mit dem Fit in Abbildung 43 berücksichtigt und damit herausgerechnet werden
The Time Projection Chamber (TPC), a large gaseous detector, is the main particle identification device of the ALICE experiment at the CERN LHC. The desired performance of the TPC defines the requirements for the gas mixture used in the detector. The active volume was filled with either Ne-CO2 (90-10) or Ne-CO2-N2 (90-10-5) during the first LHC running period. For LHC Run 2 the gas mixture is changed to Ar-CO2. Calculations of relevant gas properties are performed for Ar-based gas mixtures and compared to Ne-based gas mixtures to identify the most suitable Ar mixture. The drift velocity of ions in Ar is lower than in Ne. The closing time of the gating grid has to be adjusted accordingly to avoid drift field distortions due to back-drifting ions. The drift times of ions in the TPC readout chambers are calculated for the respective gas mixtures to determine the time to collect all ions from the amplification region. For LHC Run 3 the TPC readout chambers will be upgraded. The Multiwire Proportional Chambers (MWPCs) will be replaced by readout chambers based on Gas Electron Multipliers (GEMs) which are operated in continuous mode. As a consequence an ion backflow of the order of 1% causes significant space-charge distortions in the TPC drift volume. Similar distortions are expected in data taken specifically for the study of space-charge effects at the end of Run 1. The gating grid of the MWPCs is operated in the open state allowing the ions from the amplification region to enter the drift volume. The magnitude of the distortions in this data is measured and compared to the expectations for the TPC upgrade and results from current simulations.
Im Laufe dieser Bachelor-Arbeit wurden verschiedene GEM-Anordnungen systematisch auf ihr IBF-Verhalten hin untersucht. Neben der Reproduktion zuvor durchgeführter Messungen wurden auch neue GEM-Kombinationen getestet. Insbesondere lag der Fokus darauf, eine Verbesserung des IBFs gegenüber des Baseline-Setups zu erzielen. Dabei kamen neben der bisher verwendeten S und LP Folien auch SP Folien zum Einsatz. Die Messungen brachten jedoch kein Ergebnis hervor, welches als Verbesserung gegenüber der Ausgangslage angesehen werden könnte. Da mit SP GEMs zuvor wenig gearbeitet wurde, war es unter anderem ein Ziel, zu untersuchen, wie sich die Verwendung dieser GEMs auf den IBF auswirkt. Insbesondere war die Frage zu klären, ob durch ihre Verwendung der IBF des Baseline-Setups
verbessert werden kann. Zum besseren Verständnis wurde ebenfalls eine Variante, S-S-LPS, untersucht. Für dieses Setup konnte durch die Verwendung einer SP Folie auf Position 4 eine Verbesserung des IBF bewirkt werden, für das Baseline-Setup jedoch nicht. Ein wesentliches Ergebnis dieser Bachelor-Arbeit war, dass das Alignment der GEMs, entgegen bisheriger Annahmen, eine große praktische Relevanz hat. Die relative Orientierung zweier aufeinander folgender GEMs gleichen Lochabstands zueinander hat einen großen Ein
uss auf die lokale Ionentransmission. Eine genauere Untersuchung hat ergeben, dass man dem entgegenwirken kann, indem man aufeinander folgende GEMs um 90° gedreht einbaut. Aufgrund der Geometrie der Folien verhindert man dadurch, dass sich die Löcher zweier Folien direkt ßber- bzw. untereinander anordnen. Ein solcher Aufbau konnte durch eine geringfügige Modifikation der Testkammer erreicht werden.
Mit diesem veränderten Aufbau wäre es nun das Ziel gewesen, alle bisherigen Messungen zu wiederholen und auf Reproduzierbarkeit hin zu überprüfen. Die Wiederholung einer Messreihe mit um 90° gedrehten GEMs hat im Rahmen der Fehlertoleranzen reproduzierbare
Ergebnisse geliefert. Aus zeitlichen Gründen war es jedoch im Rahmen dieserArbeit nicht möglich, eine vollständige Wiederholung aller Messungen durchzuführen. Dies wurde zu einem späteren Zeitpunkt von anderen Personen getan.
Im Rahmen dieser Arbeit werden verschiedene Modellsysteme untersucht, die Metriken der klassischen Allgemeinen Relativitätstheorie mit Erweiterungen vergleichen, in denen Ereignishorizonte nicht existieren müssen. Die untersuchten Korrekturterme sind durch Schwachfeldmessungen, wie sie zum Beispiel in unserem Sonnensystem durchgeführt werden, nicht überprüfbar. Es ist deshalb nötig solche Systeme zu betrachten, in denen die vollständigen Gleichungen berücksichtigt werden müssen und keine Entwicklungen für schwache Felder gemacht werden können. Es gibt eine Reihe von astrophysikalischen Systemen, die diese Bedingungen erfüllen, wie das Galaktische Zentrum oder Doppelsternsysteme.
Im zweiten Kapitel der Arbeit werden Testteilchenorbits in einem Zentralpotential beschrieben und Unterschiede zwischen der klassischen und einer modifizierten Kerr-Metrik herausgearbeitet. Drei neue Phänomene der modifizierten Metrik gegenüber der Klassischen treten hier in Erscheinung. Zum einen haben Teilchen, die sich auf prograden Bahnen um den Zentralkörper drehen, ein Maximum in ihrer Winkelgeschwindigkeit. Zum anderen ist das Phänomen des frame-draggings deutlich schwächer ausgeprägt. Schließlich tritt ein letzter stabiler Orbit für entsprechend schnell rotierende Zentralkörper nicht mehr auf. Gleichzeitig sind die Unterschiede in den beiden Metriken für große Abstände (r > 10m) nahezu vernachlässigbar. In Kapitel 3 werden diese Ergebnisse auf zwei unterschiedliche Modelle zur Beschreibung von Akkretionsscheiben angewendet. Untersucht wird zum einen das Verhalten der Eisen-Kα-Emissionslinie und zum anderen der Energiefluss aus einer Akkretionsscheibe.
In der Form der Eisen-Kα-Emissionslinie gibt es eine deutliche Zunahme des rotverschobenen Anteils der Strahlung in der modifizierten Kerr-Metrik gegenüber der klassischen Kerr-Metrik. Die Akkretionsscheibe nach Page und Thorne zeigt unter Verwendung der modifizierten Kerr-Metrik eine signifikante Erhöhung der abgestrahlten Energie, wenn der Zentralkörper so schnell rotiert, dass kein letzter stabiler Orbit mehr auftritt. Zusätzlich gibt es hier in der Scheibe einen dunklen Ring im Vergleich zu den Bildern höherer Ordnung, die in der klassischen Kerr-Metrik auftreten. Erklärbar sind diese Phänomene dadurch, dass sich Teilchen auf stabilen Bahnen in der modifizierten Kerr-Metrik näher an den Zentralkörper heran bewegen können, als es in der klassischen Kerr-Metrik der Fall ist. Die Rotverschiebung ist für beide Fälle annäherend gleich.
Kapitel 4 gibt eine kurze Einführung in die Beschreibung von Gravitationswellen im Rahmen der linearisierten Allgemeinen Relativitätstheorie. Hier wird als Modell ein Binärsystem, wie etwa der Hulse-Taylor-Pulsar, betrachtet. Die Unterschiede zwischen der klassischen Theorie und einer Beschreibung unter Hinzunahme von Zusatztermen sind hier erwartungsgemäß sehr gering, da die Linearisierung der Gleichungen dazu führt, dass Starkfeldeffekte vernachlässigt werden. Für große Abstände, was in diesem Fall auch schwache Felder impliziert, sind die Erweiterungen der Gleichungen vernachlässigbar. Hier werden zum Teil auch Effekte in der klassischen ART vernachlässigt.
In Kapitel 5 befindet sich ein kurzer Ausblick in die 3+1-Formulierung der Einsteingleichungen für die numerische Beschreibung von Gravitationsphänomenen. Diese Beschreibung ermöglicht es auch komplexe Systeme ohne viele nähernde Annahmen genau beschreiben zu können. Diese Systeme können zum einen Akkretionsscheiben um kompakte Objekte sein, aber auch die Verschmelzung von zwei massiven Objekten und die damit verbundenen Gravitationswellensignale. Dadurch lassen sich die Vorhersagen der ART oder etwaiger Erweiterungen präziser modellieren.
Die vorgestellten Ergebnisse liegen innerhalb der Einschränkungen durch aktuelle Messungen. Zukünftige Messungen wie genauere Beobachtungen des Galaktischen Zentrums durch das Event Horizon Telescope sind aber voraussichtlich dazu in der Lage zwischen den untersuchten Metriken zu unterscheiden.
Die Dissertation ist in den Bereichen der semiklassischen Quantengravitation und der pseudokomplexen Allgemeinen Relativitätstheorie (pk-ART) anzusiedeln. Dabei wird unter semiklassischer Quantengravitation die Untersuchung quantenmechanischer Phänomene in einem durch eine klassische Gravitationstheorie gegebenen gravitativen Hintergrundfeld verstanden und bei der pk-ART handelt es sich um eine Alternative zu der aktuell anerkannten klassischen Gravitationstheorie, der Allgemeinen Relativitätstheorie (ART), die die reellen Raumzeitkoordinaten der ART pseudokomplex erweitert. Dies führt zusammen mit einer Veränderung des Variationsprinzips in führender Ordnung auf eine Korrektur der Einstein- Gleichung der ART mit einem zusätzlichen Quellterm (Energie-Impuls-Tensor), dessen exakte Form jedoch bisher nicht bekannt ist.
Die Beschreibung der Gravitation als Hintergrundfeld ergibt sich zwangsläufig daraus, dass auf Basis der ART bisher keine quantisierte Beschreibung für sie gefunden werden konnte. Jedoch wird erhofft, dass die Untersuchung semiklassischer Phänomene Hinweise auf die korrekte Theorie der Quantengravitation gibt. Zudem motiviert der Mangel einer quantisierten Gravitationstheorie die Verwendung alternativer Theorien, da sich dadurch die Frage stellt, ob die ART die korrekte Beschreibung klassischer Felder ist.
Das Ziel der vorliegenden Dissertation war die grundlegenden Unterschiede zwischen der ART und der pk-ART für gebundene sphärisch symmetrische Zustände der Klein-Gordon- und der Dirac-Gleichung zu identifizieren und ein qualitatives Modell der Vakuumfluktuationen in sphärisch symmetrischen Materieverteilungen zu bestimmen, wobei der Zusammenhang der pk-ART mit den Vakuumfluktuationen in der Annahme besteht, dass ein Zusammenhang zwischen ihnen und dem zusätzlichen Quellterm der pk-ART existiert. Dafür wurden die gebundenen Zustände der Klein-Gordon- und der Dirac-Gleichung für drei verschiedene Metrikmodelle (zwei ART-Modelle und ein pk-ART-Modell) mit konstanter Dichte systematisch numerisch berechnet, einige repräsentative Grafiken erstellt, anhand derer die grundlegenden Unterschiede der Ergebnisse der ART-Modelle und des pk-ART-Modells erörtert wurden, und die ART Ergebnisse der Dirac-Gleichung soweit wie möglich mit Ergebnissen der Literatur verglichen. Insbesondere wurde dabei festgestellt, dass die Energieeigenwerte in der pk-ART im Gegensatz zu denen in der ART in Abhängigkeit der Ausdehnung des Zentralobjekts ein Minimum aufweisen. Zudem wurden die Energieeigenwerte der Klein-Gordon-Gleichung teilweise sowohl über das Eigenwertproblem einer Matrix als auch über ein Anfangswertproblem berechnet und es wurde festgestellt, dass die Beschreibung als Eigenwertproblem deutlich uneffektiver ist, wenn dafür die Basis des dreidimensionalen harmonischen Oszillators genutzt wird. Für die Entwicklung des qualitativen Vakuumfluktuationsmodells wurden zwei Näherungen für den Erwartungswert des Energie-Impuls-Tensors in führender Ordnung für die Schwarzschildmetrik (ART) verglichen und die Verwendung eines qualitativen Modells durch die dabei auftretende Diskrepanz gerechtfertigt. Danach wurden die Vakuumfluktuationen für Metriken konstanter Materiedichte mit Hilfe einer der Näherungen in führender Ordnung berechnet und ein Modell gesucht, das den gleichen qualitativen Verlauf aufweist. Im Anschluss wurde dieses Modell noch für einfache Metriken mit variabler Materiedichte verifiziert.
Die Dissertation leistet mit der Analyse der gebundenen Zustände einen Beitrag in der Identifikation der Unterschiede zwischen der pk-ART und der ART und führt somit auf weitere mögliche Messgrößen, die der Unterscheidung der beiden Theorien dienen könnten. Weiterhin ermöglicht das abgeleitete Modell eine Verfeinerung der schon publizierten Ergebnisse über Neutronensterne und die für die Erstellung nötigen Vorarbeiten leisten einen Beitrag zur Identifikation des
pk-ART Quellterms.
Heavy-ion collisions at ultra-relativistic energies allow access to the Quark-Gluon Plasma, the deconfined phase of the strong interaction, a state which is believed to have existed fractions of seconds after the big bang. Two-particle correlations at small relative momenta, and particularly their dependence on pair transverse mass, are distinctly sensitive to the reaction dynamics of the fireball created in heavy-ion collisions.
Being the heaviest system to extract a size of the particle emitting source, proton-lambda correlations extend the studied range in pair transverse mass and are therefore well suited to explore the dynamical behavior of the matter created in Pb-Pb collisions at the Large Hadron Collider. The centrality dependence of the extracted source radii affirms the expectations of a larger source for more central collisions. Source radii were attained over a span of more than 0.9 GeV/c2 in mean pair transverse mass with a source radius extracted for a mean transverse mass as high as 2.18 GeV/c2. The source radii decrease with increasing pair transverse mass, as expected in a hydrodynamical picture. The comparison with radii obtained from other particle species exhibits the clear breaking of an elsewhere proposed scaling behavior of source radii with mean pair transverse mass for all particle species.
Gamma-gamma correlations possibly allow to look past the barrier of kinetic freeze-out. Additionally, they bear the potential to solve the puzzling observation in heavy-ion collisions of an excess of photons with a large temperature-like inverse slope parameter on the one hand and an elliptic flow coefficient of photons comparable to the one of hadrons on the other hand. A striking signal in the two-photon correlation function is observed; however it seems likely to not be of quantum statistical origin. A path for further studies is laid out.
Measurements of the transverse momentum (pt) spectra of K0 s and Λ(Λ̄) in Pb–Pb and pp collisions at √sNN = 2.76TeV with the ALICE detector at the LHC at CERN up to pt = 20GeV/c and pt = 16GeV/c, respectively, are presented in this thesis. In addition, the particle rapidity densities at mid-rapidity and nuclear modification factors of K0 s and Λ(Λ̄) are shown and discussed. The analysis was performed using the Pb–Pb data set from 2010 and the pp data set from 2011. For the identification of K0 s and Λ(Λ̄), the on-the-fly V0 finder was employed on tracking information from the TPC and ITS detectors. The Λ and Λ̄ spectra were feed-down corrected using the measured published Ξ− spectra as input.
Regarding the rapidity density at mid-rapidity, a suppression of the strange particle production in pp as compared to Pb–Pb collisions is observed at all centralities, whereas the production per pion rapidity density stays constant as a function of dNch/dη including both systems. Furthermore, the relative increase of the individual particle species in pp and AA collisions is compatible for non- and single-strange particles when going from RHIC (√sNN = 0.2TeV) to LHC energies. On the other hand, in case of multi-strange baryons, a stronger increase in the particle production in pp is seen. The Λ̄ and Λ production in Pb–Pb and pp collisions was found to be equal. Concerning the nuclear modification factors, at lower pt (pt <5GeV/c), an enhancement of the RAA of Λ with respect to that of K0 s and charged hadrons is observed. This baryon-to-meson enhancement appearing in central Pb–Pb collisions at RHIC and LHC is currently explained by the interplay of the radial flow and recombination as the dominant particle production mechanism in this pt sector. The effect of radial flow is thus also seen in the low and intermediate pt region of RAA, where a mass hierarchy is discovered among the baryons and mesons, respectively, with the heaviest particle being least suppressed. When comparing the results from RHIC and LHC, the RCP is found to be similar at low-to-intermediate pt, while a significantly smaller RAA of K0 s and Λ in central and peripheral events at the LHC is observed in this pt region as compared to the RHIC results. This can be attributed to the larger radial flow in AA collisions and to the harder spectra at the LHC. At high pt (pt > 8GeV/c), a strong suppression in central Pb–Pb collisions with respect to pp collisions is found for K0 s and Λ(Λ̄). A significant high-pt suppression of these hadrons is also observed in the ratio of central-to-peripheral collisions. The nuclear modification of K0 s and Λ(Λ̄) is compatible with the modification of charged hadrons at
high pt. The calculations with the transport model BAMPS agree with these results suggesting a similar energy loss for all light quarks, i.e. u, d and s. Moreover, a compatible suppression for c-quarks appears in the ALICE measurements via the D meson RAA as well as in the BAMPS calculations, which hints to a flavour-independent suppression if light- and c-quarks are regarded. Within this consideration, no indication for a medium-modified fragmentation is found yet.
To summarize, for the particle production in Pb–Pb collisions at the LHC relative to pp neither at lower pt (rapidity density) nor at higher pt (nuclear modification factor) a significant difference of K0 s and Λ(Λ̄) carrying strangeness to hadrons made of u- and d-quarks was found.
Recent STAR data for the directed flow of protons, antiprotons and charged pions obtained within the beam energy scan program are analyzed within the Parton-Hadron-String-Dynamics (PHSD/HSD) transport models. Both versions of the kinetic approach are used to clarify the role of partonic degrees of freedom. The PHSD results, simulating a partonic phase and its coexistence with a hadronic one, are roughly consistent with the STAR data. Generally, the semi-qualitative agreement between the measured data and model results supports the idea of a crossover type of quark-hadron transition which softens the nuclear EoS but shows no indication of a first-order phase transition. Furthermore, the directed flow of kaons and antikaons is evaluated in the PHSD/HSD approachesfrom √sNN ≈ 3 - 200 GeV which shows a high sensitivity to hadronic potentials in the FAIR/NICA energy regime √sNN ≤ 8 GeV.
Within this thesis, the mechanical integration of the Micro Vertex Detector (MVD) of the Compressed Baryonic Matter (CBM) experiment is developed. The CBM experiment, which is being set up at the future FAIR facility, aims to investigate the phase diagram of strongly interacting matter in the regime of high net-baryon densities and moderate temperatures. Heavy-ion collisions at beam energies in the range of 2 to 45 AGeV, complemented by results from elementary reactions, will allow access to these conditions. The experiments conducted at LHC (CERN, Switzerland) and at RHIC (BNL, USA = does not apply within the Beam Energy Scan program) so far focus on the investigation of the phase diagram in the regime of high temperatures and vanishing net-baryon densities. The high beam intensities provided by FAIR will enable CBM to focus its experimental program on systematical studies of rare particles. Among other particle species, open charm-carrying particles are one of the most promising observables to investigate the medium created in heavy-ion collisions since their charm quarks are exposed to the medium and traverse its whole evolution. The fact that the decay particles of these rare observables are also produced abundantly in direct processes in heavy-ion collisions results in a huge combinatorial background which attributes specific requirements to the detector systems. The call for a high interaction rate leads to a cutting-edge detector system which provides an excellent spatial resolution, thin detector stations and the capability to cope with the induced radiation as well as the high rate of traversing particles and the resulting track density. The required demands are to be implemented by the MVD which will be equipped with four planar stations positioned at 50, 100, 150 and 200 mm downstream the target. The geometrical acceptance, which has to be covered with charge-sensitive material, is defined according to the requirements of CBM in the polar angle range of [2.5°; 25°]. The MVD stations have to contribute as little as possible to the overall material budget. The expected beam intensity and the vicinity close to the target require silicon detectors that provide a hardness against non-ionizing radiation of more than 10^13 n_eq/cm² and against ionizing radiation of more than 1 Mrad. In addition, the read-out time of the sensors has to be as short as possible to avoid potential ambiguities in the particle tracking caused by the pile-up of hits having emerged from different collisions. For the time being, Monolithic Active Pixel Sensors (MAPS) offer the optimal choice of technology required to address the physics program of CBM with respect to the spectroscopy of open charm and di-electrons. The geometrical properties of these sensors define the layout of the detector. To limit the multiple scattering of the produced particles inside the geometrical acceptance, the sensors and the MVD have to operate in a moderate vacuum. The sensors are thinned down to a thickness of 50 µm and, to achieve a maximum polar angle coverage, they are glued onto both sides of dedicated thin carriers. These carriers, which are made of highly thermally conductive materials such as CVD diamond or encapsulated TPG, allow efficient extraction of the power produced in the sensors. This enables their operation at temperatures well below 0 °C as suggested by corresponding radiation hardness studies. Dedicated actively cooled aluminum-based heat sinks are positioned outside of the acceptance to dissipate the heat produced by the sensors and the front-end electronics. The design of the MVD, including the realistic thicknesses of the integrated materials, has been developed and refined in the context of this thesis. It has been transformed into a unique software model which is used to simulate and further optimize the mechanical and thermal properties of the MVD, as well as in sophisticated physics simulations. The model allowed evaluation of the material budget of each individual MVD station in its geometrical acceptance. The calculated averaged material budget values stay well below the material budget target values demanded by the physics cases. The thermal management of the MVD has been simulated on the level of a quadrant of each MVD station – four identically constructed quadrants are forming an MVD station – taking into account material properties of the sensors, the glue and the sensor carrier. The temperature gradients across the pixels of a given sensor area in the direction of the rows and columns were found to be in an acceptable range of below 5 K. A temperature difference between the thermal interface area and the maximum sensor temperature of dT = 5 K on the first and a value of dT = 40 K on the fourth MVD station has been thermally simulated assuming a sensor power dissipation of 0.35 W/cm², highlighting the need to optimize the thermal interface between the involved materials as well as the power dissipation of the sensors. The feasibility of several key aspects required for the construction phase of the MVD has been investigated within the MVD Prototype project. The construction of the MVD Prototype allowed evaluation, testing and validation of the handling and the double-sided integration of ultra-thin sensors – the required working steps for their integration have been specified, evaluated and successfully established – as well as their operation in the laboratory and during a concluding in-beam test using high-energetic pions provided by the CERN-SPS. The thermal characterization of the MVD Prototype during its operation – in a temperature range from [5 °C; 25 °C], not in vacuum – confirmed the corresponding thermal simulations conducted during its design phase and substantiated the results of the thermal simulations for the design of the MVD. The aim of a material budget value of only x/X_0 ~ 0.3% for the MVD Prototype has been accomplished. Analyzing the in-beam data, the nominal sensor performance parameters were successfully reproduced, demonstrating that the proposed integration process does not impair the sensors’ performance. Moreover, no evidence of potential impact on the sensors’ performance arising from mechanical weaknesses of the MVD Prototype mechanics has been found within the analyzed data. Based on the MVD Prototype and the simulations of the material budget as well as the thermal management, this thesis evaluated the work packages, procedures and quality assurance parameters needed to set up the starting version of the MVD and addressed open questions as well as critical procedures to be studied prior to the production phase of the detector, emphasizing the evaluation of the cooling concept in vacuum and the integration of sensors in ladder structures on both sides of the quadrants of the MVD stations.
In the initial stage of relativistic heavy-ion collisions, strong magnetic fields appear due to the large velocity of the colliding charges. The evolution of these fields appears as a novel and intriguing feature in the fluid-dynamical description of heavy-ion collisions. In this work, we study analytically the one-dimensional, longitudinally boost-invariant motion of an ideal fluid in the presence of a transverse magnetic field. Interestingly, we find that, in the limit of ideal magnetohydrodynamics, i.e., for infinite conductivity, and irrespective of the strength of the initial magnetization, the decay of the fluid energy density e with proper time τ is the same as for the time-honoured “Bjorken flow” without magnetic field. Furthermore, when the magnetic field is assumed to decay , where a is an arbitrary number, two classes of analytic solutions can be found depending on whether a is larger or smaller than one. In summary, the analytic solutions presented here highlight that the Bjorken flow is far more general than formerly thought. These solutions can serve both to gain insight on the dynamics of heavy-ion collisions in the presence of strong magnetic fields and as testbeds for numerical codes.
Im Rahmen des FRANZ-Projektes wurde nach einer Ionenquelle verlangt welche in der Lage ist einen intensiven hochbrillanten Protonenstrahl von 200 mA bei 120 keV im Dauerstrichbetrieb zur Verfügung zu stellen, bei gleichzeitig niedriger Strahlemittanz. Der recht hohe Protonenstrom von 200 mA stellt dabei eine Herausforderung an den Experimentator dar.
Die grundsätzliche Problematik bei der Entwicklung einer solchen Ionenquelle besteht im Wesentlichen darin, ein geeignetes Extraktionssystem zu designen, welches in der Lage ist den geforderten hohen Protonenstrom zu extrahieren und transportieren. In diesem Zusammenhang wurden Abschätzungen bezüglich des notwendigen Emissionsradius, der elektrischen Feldstärke im Extraktionsspalt sowie des Protonenanteils für den verlangten Protonenstrom von 200 mA durchgeführt. Für die praktische Umsetzung wurden Lösungsstrategien erarbeitet. Ziel war es die elektrische Feldstärke im Gap so hoch wie möglich und den Radius der Emissionsöffnung so klein wie möglich zu wählen, bei gleichzeitig möglichst hohem Protonenanteil. Basierend auf diesen Erkenntnissen wurde ein Prototyp der Bogenentladungs-Volumenionenquelle entwickelt und erfolgreich in Betrieb genommen.
Zur Steigerung des Protonenanteils im Wasserstoffplasma wurden diverse Parameter der Ionenquelle optimiert wie bspw. Bogenleistung, Gasdruck sowie insbesondere die Feldverteilung und die magnetische Flussdichte des magnetischen Filters. Diese Ergebnisse wurden mit dem verbesserten theoretischen Modell zur Erzeugung von atomaren Wasserstoffionenstrahlen verglichen. Um die elektrische Feldstärke im Extraktionsspalt zu steigern wurden die Elektroden aus einem thermisch belastbaren Material hergestellt und einer speziellen Oberflächenbehandlung unterzogen. Des Weiteren wurden theoretische und experimentelle Untersuchungen bezüglich der Emissionsstromdichte und der Strahlqualität durchgeführt. Weiterhin wurde die Emittanz des Ionenstrahls berechnet sowie mit einer eigens am Institut für Angewandte Physik entwickelten Pepperpot-Emittanzmessanlage experimentell bestimmt. Die vorliegende Dissertation präsentiert die Ergebnisse der Entwicklung dieser hocheffizienten Bogenentladungs-Volumenionenquelle.
Das Hauptziel der vorliegenden Arbeit war es, die energieabhängigen Wirkungsquerschnitte von (γ,n)-Reaktionen für 169Tm, 170Yb, 176Yb und 130Te mittels der Photoaktivierungsmethode zu bestimmen.
Dazu wurden zunächst die Effizienzen der verwendeten Detektoren mithilfe von Simulationen korrigiert, da die verwendeten Targets eine ausgedehnte Geometrie aufweisen im Gegensatz zu den punktförmigen Eichquellen. Es hat sich herausgestellt, dass mit den Simulationen die Effizienzen der MCA-Detektoren energieabhängig korrigiert werden konnten, da die Simulationen die Form der gemessenen Effizienzen gut reproduzieren konnten. Bei den Effizienzen der LEPS-Detektoren hingegen konnte keine energieabhäangige Korrektur vorgenommen werden, da die LEPS-Detektoren aufgrund des geringen Abstandes zu den Detektoren hohe Summeneffekte zeigten. Im Rahmen dieser Arbeit konnten diese Summeneffekte jedoch nicht korrigiert bzw. berücksichtigt werden.
The high collision energies reached at the LHC lead to significant production yields of light (anti-)nuclei and (hyper-)nuclei in proton–proton, proton–lead and, in particular, lead–lead collisions. The excellent particle identification capabilities of the ALICE apparatus, based on the specific energy loss in the Time Projection Chamber and the velocity information in the Time-Of-Flight detector, allow for the detection of these rarely produced particles. Further, the Inner Tracking System gives the possibility to separate primary nuclei from those coming from weak decay of heavier systems. One example of such a weak decay is the measurement of the (anti-)hypertriton decay to 3He + π− (3H̅e̅ + π+). The aforementioned capabilities of the ALICE apparatus offer the unique opportunity to search for exotica, like the bound state of a Λ and a neutron which would decay into a deuteron and a pion, or the bound state of two Λ’s. Results on the production of stable nuclei in Pb–Pb collisions at √sNN = 2.76 TeV are presented, and compared with thermal model predictions. We further present the current status of the searches, by their upper limits on the production yields, and compare the results to thermal and coalescence model expectations.
Die vorliegende Arbeit befasst sich mit der Untersuchung einzelner chiraler Moleküle durch Koinzidenzmessungen. Ein Molekül wird chiral genannt, wenn es in zwei Varianten, sogenannten Enantiomeren auftritt, deren Strukturmodelle Spiegelbilder voneinander sind.
Da viele biologisch relevante Moleküle chiral sind, sind Methoden und Erkenntnisse dieses Gebiets von großer Bedeutung für Biochemie und Pharmazie. Bemerkenswert ist, dass in der Natur meist nur eines der beiden möglichen Enantiomere auftritt. Ob diese Wahl zufällig war, ob sie aufgrund der Anfangsbedingungen bei Entstehung des Lebens erfolgte, oder ob sie eine fundamentale Ursache hat, ist bisher ungeklärt. Seit der Entdeckung chiraler Molekülstrukturen in der zweiten Hälfte des 19. Jahrhunderts ist eine Vielzahl von Methoden entwickelt worden, um die beiden Enantiomere eines Moleküls zu unterscheiden und ihre Eigenschaften zu untersuchen. Aussagen über die mikroskopische Struktur (Absolutkonfiguration) können jedoch meist nur mithilfe theoretischer Modelle getroffen werden.
Der innovative Schritt der vorliegenden Arbeit besteht darin, eine in der Atomphysik entwickelte Technik zur Untersuchung einzelner mikroskopischer Systeme erstmals auf chirale Moleküle anzuwenden: Mit der sogenannten Cold Target Recoil Ion Momentum Spectroscopy (COLTRIMS) ist es möglich, einzelne Moleküle in der Gasphase mehrfach zu ionisieren und die entstandenen Fragmente (Ionen und Elektronen) zu untersuchen. Die gleichzeitige Detektion dieser Fragmente wird als Koinzidenzmessung bezeichnet.
Zunächst wurde das prototypische chirale Molekül CHBrClF mit einem Femtosekunden-Laserpuls mehrfach ionisiert, sodass alle fünf Atome als einfach geladene Ionen in einer sogenannten Coulomb-Explosion „auseinander fliegen“. Durch Messung der Impulsvektoren dieser Ionen konnte die mikroskopische Konfiguration einzelner Moleküle mit sehr hoher Zuverlässigkeit bestimmt werden. Somit eignet sich die Koinzidenzmethode auch dazu, die Anteile der rechts- bzw. linkshändigen Enantiomere in einer Probe zu bestimmen. Die Messungen an der verwendeten, racemischen Probe zeigen bei der Ionisation mit linear polarisiertem Licht im Rahmen der statistischen Unsicherheit wie erwartet eine Gleichverteilung der beiden Enantiomere.
In einem nachfolgenden Experiment konnte gezeigt werden, dass sich die Coulomb-Explosion auch mit einzelnen hochenergetischen Photonen aus einer Synchrotronstrahlungsquelle realisieren lässt. Für beide Ionisationsmechanismen – am Laser und am Synchrotron - wurden mehrere Fragmentationskanäle untersucht. Im Hinblick auf die Erweiterung der Methode hin zu komplexeren, biologisch relevanten Molekülen ist es entscheidend zu wissen, inwieweit sich die Händigkeit bestimmen lässt, wenn nicht alle Atome des Moleküls als atomare Ionen detektiert werden. Hierbei stellte sich heraus, dass auch molekulare Ionen zur Bestimmung der Absolutkonfiguration herangezogen werden können. Eine signifikante Steigerung der Effizienz konnte für den Fall demonstriert werden, dass nicht alle Fragmente aus der Coulomb-Explosion des Moleküls detektiert wurden – hier lassen sich allerdings nur noch statistische Aussagen über die Absolutkonfiguration und die Häufigkeit der beiden Enantiomere treffen.
Um die Grenzen der Methode in Bezug auf die Massenauflösung zu testen, wurden isotopenchirale Moleküle, d.h. Moleküle, die nur aufgrund zwei verschiedener Isotope chiral sind, untersucht. Auch hier ist eine Trennung der Enantiomere möglich, wenn auch mit gewissen Einschränkungen.
Ein wichtiges Merkmal chiraler Moleküle ist das unterschiedliche Verhalten der Enantiomere bei Wechselwirkung mit zirkular polarisierter Strahlung. Diese Asymmetrie wird Zirkulardichroismus genannt. Die koinzidente Untersuchung von Ionen und Elektronen aus der Fragmentation eines Moleküls eröffnet neue Möglichkeiten für die Untersuchung des Dichroismus. So können die Impulsvektoren der Ionen mit bekannten Asymmetrien in der Elektronenverteilung (Photoelektron-Zirkulardichroismus) verknüpft werden, was zu einem besseren Verständnis der Wechselwirkung elektromagnetischer Strahlung mit chiralen Molekülen führen kann.
In dieser Arbeit wurde nach Asymmetrien in der Winkelverteilung sowohl der Ionen als auch der Elektronen nach der Ionisation von CHBrClF und Propylenoxid (C3H6O) mit zirkular polarisierter Synchrotronstrahlung gesucht. In den durchgeführten Messungen konnte kein zweifelsfreier Nachweis für einen Dichroismus bei den verwendeten experimentellen Bedingungen erbracht werden. Technische und prinzipielle Limitierungen der Methode wurden diskutiert und Verbesserungsvorschläge für zukünftige Messungen genannt.
Mit der erfolgreichen Bestimmung der Absolutkonfiguration und der prinzipiellen Möglichkeit, Asymmetrien in zuvor nicht zugänglichen Messgrößen zu untersuchen, legt diese Arbeit den Grundstein für die Anwendung der Koinzidenzspektroskopie auf Fragestellungen der Stereochemie.
The Compressed Baryonic Matter (CBM) experiment will explore the phase diagram of strongly interacting matter in the region of high net baryonic densities. The matter at these extreme conditions will be produced and studied in heavy-ion collisions with a fixed target set-up.
The present work is dedicated to the main component of the CBM experiment - the Silicon Tracking System (STS). The STS comprises of 8 tracking stations with 1292 double sided silicon microstrip sensors. The STS has to enable the reconstruction of up to 1000 charged particle tracks per nucleus-nucleus interaction at the rate of up to 10 MHz, provide a momentum resolution of Δp/p =1%, and withstand the radiation load of up to 1 x 1014 neq/cm2 (neq — radiation dose of 1 MeV neutron equivalent). Self-triggering read-out electronics will be located on the periphery of the detecting planes, and connected to the sensors with low mass micro-cables.
During the R&D phase, as well as in the pre-series and series production phase, the characterization of the sensors, of the front-end electronics and of the complete detector modules has to be performed. It is evident that characterization of more than 1000 silicon microstrip sensors and later of complete detector modules is very time-consuming, and may even damage the objects if not performed carefully. One of the goals of this work was to develop a systematic procedure for the quality assurance for the double-sided silicon microstrip sensors. This includes static optical inspection and visual tests, passive electrical test (such as leakage current, bulk capacitance, inter-strip capacitance & resistances, bias resistance and coupling capacitance), radiation hardness and long-term stability. A strategy for the quality assurance of these sensors is presented, defining the various tests to be performed and the documentation of the results. The techniques and quality assurance criteria will be applied for the pre-series and series production.
With decreasing feature size and increase in functionality and structures, the classical mechanical probe approach for internal fault detection and functional testing faces increasing challenges. In the field of silicon based chips and sensors there is rarely any analysis on the topic of non-invasive or contact-less probing and characterization, despite the fact that the contact-less probing is becoming more and more important as the fabrication technologies become smaller and more susceptible to the parasitic impact of mechanical probes. The silicon micro-strip double sided sensors used in STS have a complex structure, such as 1024 metal electrodes, 2048 bias resistors, 2048 DC pads and 4098 AC pads for probing, several guard rings, and even more in the 6.2 cm x 6.2 cm prototype sensor. Photo-intrusive technique is the best solution for the characterization and investigation of crucial parameters related to the detector operation and its functionality. A photo-intrusive probing is a method in which a non-invasive pulsed laser of a desired wavelength is used to inject the photon into the bulk and resulting in electron-hole pairs (e-h). In a completely depleted silicon sensor the charge injected (or generated) by the pulsed laser beam could be detected as current and shall be used for characterization.
A non-invasive contact-less Laser Test System (LTS) was developed based on a pulsed laser to investigate properties of the silicon sensors. The set-up is able to inject charge locally and scan sensors(or detector modules) with a pulsed infra-red laser driven by a step motor. The LTS is designed to measure sensor response in an automatized procedure at several thousand positions across the sensor with focused infra-
red laser light (spot size = 12 μm , wavelength = 1060 nm). The duration (10 ns) and power (5 mW) of the laser pulses are selected such that the absorption of the laser light in the 300 μm thick silicon sensors produces a number of about 24000 electrons, which is similar to the charge created by the minimum ionizing particles (MIP) in these sensors. The set-up was used to developed characterization procedures to determine the charge sharing between strips, and to measure a qualitative uniformity of the sensor response over the whole active area. The prototype sensors which are tested with the set-up are small prototype sensors (256 strips, pitch = 50 μm on each side) and full-size detector modules (1024 strips/side and pitch = 58 μm). They are read-out using a self-triggering prototype read-out electronic ASIC called n-XYTER. Laser scans for amplitude response, charge sharing in the inter-strip region, and spot-size determination technique are reported. For the verification of the some design parameters, unique methods of determining coupling capacitance, and inter-strip capacitance have been developed. The modules were also tested with proton beams, and the charge sharing in the inter-strip region has been compared to the laser test results.
The PANDA experiment at FAIR will study fundamental questions of strong interaction with high precision. Effcient particle identification for a wide momentum range and the full solid angle is required for successful reconstruction of the benchmark channels of the broad PANDA physics program. For this purpose a compact ring imaging Cherenkov detector is being developed for the barrel region of the PANDA detector. The concept and the baseline design of the PANDA Barrel DIRC were inspired by the BABAR DIRC and improved with important modifications, like fast photon timing, a compact expansion volume, and focusing optics. The required detector resolution was defined based on the PANDA PID specifications using the phase space distributions of the final state kaons produced in selected benchmark channels. To optimize the PANDA Barrel DIRC design in terms of performance and cost the baseline detector geometry and a number of design options were implemented in the simulation. The key options include the radiator dimensions, two types of expansion volume shapes, and a variety of focusing systems. The performance of the detector designs was quantified in terms of single photon Cherenkov angle resolution and photon yield. It was found that the number of radiators can be reduced by about 40% without loss in performance. A compound spherical lens without air gap was found to be a promising focusing system. An optimized Barrel DIRC design meeting the PID requirements includes three radiator bars per at section, the compound lens without air gap, a compact prism-shaped EV, and a total of 192 Microchannel-Plate PMTs as photosensors. The number of electronic channels can be halved without loss in performance by combining two neighbouring pixels. For such a detector design the total cost will be significantly reduced compared to the baseline version while still meeting or exceeding the PANDA PID performance goals.
Ein Laserblitz von unvorstellbarer Intensität pulverisiert im Labor ein Molekül. Wachsam zeichnen die Instrumente die Flugbahn und Geschwindigkeit jedes Bruchstücks auf. Physiker gewinnen daraus hochpräzise Informationen über die Molekülstruktur. Auch links- und rechtshändige Formen lassen sich unterscheiden.
The pA system is typically regarded in heavy ion collisions as a “cold” nuclear matter environment and thought to isolate and identify initial state effects due to the presence of multiple nucleons in the incoming nucleus. Moreover, pA collisions bridge the gap between peripheral AA collisions and the pp baseline to create a more complete understanding of underlying production mechanisms and how they evolve with multiplicity. Recent measurements at both RHIC and the LHC provide an indication, however, that the “cold” nuclear matter picture may be somewhat naïve.
Recent LHC results from the 2013 p–Pb run at √sNN = 5.02 TeV will be discussed.
There are only 3 methods for the production of heavy and superheavy (SH) nuclei, namely, fusion reactions, a sequence of neutron capture and beta(-) decay and multinucleon transfer reactions. Low values of the fusion cross sections and very short half-lives of nuclei with Z<120 put obstacles in synthesis of new elements. At the same time, an important area of SH isotopes located between those produced in the cold and hot fusion reactions remains unstudied yet. This gap could be filled in fusion reactions of 48Ca with available lighter isotopes of Pu, Am, and Cm. New neutron-enriched isotopes of SH elements may be produced with the use of a 48Ca beam if a 250Cm target would be prepared. In this case we get a real chance to reach the island of stability owing to a possible beta(+) decay of 291114 and 287112 nuclei formed in this reaction with a cross section of about 0.8 pb. A macroscopic amount of the long-living SH nuclei located at the island of stability may be produced by using the pulsed nuclear reactors of the next generation only if the neutron fluence per pulse will be increased by about three orders of magnitude. Multinucleon transfer processes look quite promising for the production and study of neutron-rich heavy nuclei located in upper part of the nuclear map not reachable by other reaction mechanisms. Reactions with actinide beams and targets are of special interest for synthesis of new neutron-enriched transfermium nuclei and not-yet-known nuclei with closed neutron shell N=126 having the largest impact on the astrophysical r-process. The estimated cross sections for the production of these nuclei allows one to plan such experiments at currently available accelerators.
Die vorliegende Arbeit beschäftigt sich mit der Emission von Elektronen aus kleinen dissoziierenden Molekülen.
Die Frage, der hier nachgegangen werden soll: Wie läuft ein solcher Prozess, bei dem ein Molekül in seine atomaren Einzelteile zerbricht, tatsächlich ab? Während es Experimentalphysikern schon seit längerem möglich ist präzise Aussagen über den Zustand eines Systems vor und nach einer solchen „halben“ chemischen Reaktion zu machen, war es lange nicht möglich die Reaktion selbst zu be-obachten, da sie auf einer Zeitskala von einigen Femtosekunden (1 fs = 10-15 s) stattfindet. Eine Möglichkeit, solche Prozesse zu untersuchen, ist die Ionisation, also das Herauslösen eines Elektrons aus seinem gebunden Zustand im Molekül, und die anschließende Messung der kinetische Energie oder des Impulsvektors des Elektrons. Dadurch können Rückschlüsse auf die Bindungsenergie und die räumliche Verteilung der Elektronen im gebundenen Zustand gezogen werden. Wenn man in der Lage ist die Elektronen, die von einem dissoziierenden Molekül zu verschiedenen Zeitpunkten während des Dissoziationsprozesses emittiert werden, zu messen, so sollte es unter Umständen möglich sein, den Übergang von molekularen zu atomaren Orbitalen zu beobachten.
Zur Durchführung der Messungen wurde ein COLTRIMS-Multikoinzidenzimpulsspektrometer ver-wendet, mit welchem sowohl die kinetische Energie aller geladenen Reaktionsprodukte als auch deren vollständige Impulsvektoren koinzident gemessen werden können.
In einer Messung an Chlorwasserstoff wurde auf diese Weise die ultraschnelle Dissoziation angeregter neutraler Moleküle untersucht. Hierbei machte man sich den Umstand zunutze, dass die angeregten Zustände bei beliebigen internuklearen Abständen zerfallen und ein Auger-Elektron emittieren können.
Für den resonanten Auger-Zerfall der 2p-16σ-Zustände des Chlorwasserstoffmoleküls wurden unseres Wissens nach erstmals alle Komponenten der Impulsvektoren sowohl der Auger-Elektronen als auch der ionischen Reaktionsprodukte gemessen. Durch diese kinematisch vollständige Messung konnte der Prozess in bisher noch nie dagewesenem Detail untersucht werden. Zum ersten Mal konnte sowohl der angeregte Zustand nach der Absorption des Photons, als auch der elektronische Endzustand für jeden einzelnen Zerfall bestimmt werden. Aufgeschlüsselt nach diesen Zuständen konnten dann die Winkelverteilungen der Auger-Elektronen und die Aufteilung der Energie auf Elektron und Kernbewegung vermessen werden. Dies ist der vollständige Satz aller möglichen Beobachtungsgrößen, so dass die Daten über keine Größe mehr integriert wurden.
In einer Messung an H2O-Molekülen wurde ein Prozess untersucht, bei dem ein einfach geladenes angeregtes Molekül in zwei Fragmente dissoziiert und, wenn die Dissoziation bereits sehr weit fort-geschritten ist, ein weiteres Elektron emittiert. Hier konnte gezeigt werden, wie eine Anisotropie in der Elektronenwinkelverteilung eines dissoziierenden Moleküls mit Hilfe einer einfachen klassischen Simulation dazu verwendet werden kann, den Abstand zwischen einem Proton und einem angeregten Molekül, in welche das ursprüngliche Molekül dissoziiert, zu dem Zeitpunkt an dem das angeregte Molekül durch Autoionisation ein weiteres Elektron emittiert, zu bestimmen. Es wurde nachgewiesen, dass der Auger-Zerfall eines H2O+*-Ions, bei dem ein Sauerstoff 2s-Elektron aus dem Molekülverband entfernt wurde, erst bei sehr großen Abständen von mehreren 100 Ångström zwischen dem Proton und dem OH*-Molekül stattfindet.
Die dritte Messung an dem Ne2-Dimer beschäftigt sich mit der Frage, ob die in einem Molekül er-zeugten Vakanzen als lokalisiert oder delokalisiert zu betrachten sind. Wie bereits in vorhergegangenen Messungen dargelegt wurde, ist die Antwort auf die Frage für kovalente Moleküle eine Frage des Messprozesses. In Rahmen dieser Arbeit konnte nachgewiesen werden, dass dies auch für schwach gebundene Van-der Waals-Moleküle der Fall ist und deren Valenzelektronen ebenfalls unter bestimmten Umständen als delokalisiert angesehen werden müssen. Das ist insoweit überraschend, da die gängige Vorstellung eines solchen Moleküls die eines Systems aus einzelnen Atomen ist, welche nur durch kleine Ladungspolarisationen in den Elektronenschalen eine Bindung eingehen. Des Weiteren wurde gezeigt, dass sich der Prozess qualitativ mit einer einfachen Doppelspalt-Simulation erklären lässt, bei welcher ebene Wellen mit einem bestimmten Phasenversatz, der sich aus der Form der beteiligten Atomorbitale ergibt, von den beiden Kernen emittiert werden.
Die Dissoziation des Moleküls war selber nicht Gegenstand der Untersuchung, sondern wurde ausgenutzt um verschiedene elektronische Zustände, in welchen sich das Molekül nach der Ionisation befinden kann und von denen nur einer dissoziativ ist, zu unterscheiden.
We present an effective model for timing-dependent synaptic plasticity (STDP) in terms of two interacting traces, corresponding to the fraction of activated NMDA receptors and the concentration in the dendritic spine of the postsynaptic neuron. This model intends to bridge the worlds of existing simplistic phenomenological rules and highly detailed models, thus constituting a practical tool for the study of the interplay of neural activity and synaptic plasticity in extended spiking neural networks. For isolated pairs of pre- and postsynaptic spikes, the standard pairwise STDP rule is reproduced, with appropriate parameters determining the respective weights and timescales for the causal and the anticausal contributions. The model contains otherwise only three free parameters, which can be adjusted to reproduce triplet nonlinearities in hippocampal culture and cortical slices. We also investigate the transition from time-dependent to rate-dependent plasticity occurring for both correlated and uncorrelated spike patterns.
The Fisher information constitutes a natural measure for the sensitivity of a probability distribution with respect to a set of parameters. An implementation of the stationarity principle for synaptic learning in terms of the Fisher information results in a Hebbian self-limiting learning rule for synaptic plasticity. In the present work, we study the dependence of the solutions to this rule in terms of the moments of the input probability distribution and find a preference for non-Gaussian directions, making it a suitable candidate for independent component analysis (ICA). We confirm in a numerical experiment that a neuron trained under these rules is able to find the independent components in the non-linear bars problem. The specific form of the plasticity rule depends on the transfer function used, becoming a simple cubic polynomial of the membrane potential for the case of the rescaled error function. The cubic learning rule is also an excellent approximation for other transfer functions, as the standard sigmoidal, and can be used to show analytically that the proposed plasticity rules are selective for directions in the space of presynaptic neural activities characterized by a negative excess kurtosis.
The implementation of pump-probe experiments with ultrashort laser pulses enables the study of dynamical processes in atoms or molecules, which may provide a deeper inside in their physical origin. The application of this method to systems as nitrous oxide, which is not only a simple example for polyatomic molecules but which also plays a crucial role in the greenhouse effect, promises interesting and beneficial findings. This thesis presents, on the one hand, the technical extension of an existing experimental setup for high-harmonic generation (HHG) and ultra-fast laser physics by an extreme ultraviolet (XUV) spectrometer for the in-situ observation of the harmonic spectrum during ongoing measurements. The present setup enables the production of short laser pulse trains in the XUV spectral range with durations of a few hundred attoseconds (1 as = 10^−18 s) via HHG and supports to perform XUV-IR pump-probe experiments using the infrared (IR) driving field with durations of a few femtoseconds. Moreover, a reaction microscope is implemented, which enables the coincident detection of several charged particles emerging from an ionization or dissociation process and to reconstruct their full 3-D-momentum vectors. With this technique it is possible to perform time-resolved momentum spectroscopy of few-particle quantum systems. Here, the design and the calibration of the XUV spectrometer is presented as well as a first application to the analysis of experimental data by providing information on the produced photon energies. On the other hand, the results of an XUV-pump IR-probe measurement on nitrous oxide (N2O) are discussed. With the broad harmonic spectrum (∼ 17 − 45 eV) it is possible to address several states of the singly and doubly ionized cation. One reaction channel is the single ionization into a stable state of N2O+. Here, the coincidently measured photoelectron energies allow the observation of sidebands, which served to estimate the pulse durations of the involved XUV pulse trains as well as of the fundamental IR pulses. Additionally, single ionization of nitrous oxide can lead to a dissociation into a charged and a neutral fragment. The four respective dissociation channels are compared by presenting their branching ratios, kinetic energy release (KER) distributions and their dependencies on the time delay between pump and probe pulse. In the production of the dication, there are two competitive processes: direct double ionization considering photon energies above the double-ionization threshold, and autoionization of singly ionized and excited molecules in the case of photon energies near the double-ionization threshold. In both cases, the ionization leads to a Coulomb explosion into two charged fragments, where the N − N bond or the N − O bond may dissociate. The influence of the IR-probe field on the ionization yield and the KER was investigated for both dissociation channels and compared. In addition, the corresponding photoelectron energy spectra are presented, which show indications for autoionizing states being involved, and their dependence on the delay and the KER of the respective ions is analyzed.
The upcoming CBM Experiment at FAIR aims at exploring the region of highest net baryonic densities reproducible in energetic heavy ion collisions. Due to the very high beam intensities expected at FAIR, unprecedented data regarding rare observables such as charm quarks and hyperons will be accessible. Open charm mesons are particularly interesting, since they support the reconstruction of the total charm cross-section in order to search for exotic phenomena, e.g. a phase transition towards the quark-gluon plasma which is predicted by several theoretical models. Open charm studies will be performed via secondary vertex reconstruction with a suitable Micro-Vertex Detector (MVD). The CBM-MVD is currently in the development and prototyping phase with primary design goals concentrating on spatial resolution, radiation hardness, material budget, and readout performance. CMOS Monolithic Active Pixel Sensors (MAPS) provide an excellent spatial resolution for the MVD in the order of few um in combination with a low material budget (50 um thickness) and high radiation hardness. The active volume of the devices is formed from the epitaxial layer of standard CMOS wafers. This allows for integration of pixels together with analogue and digital data processing circuits on one single chip. This option was explored with the MIMOSA-26 prototype, which integrates functionalities like pedestal correction, correlated double sampling, discrimination and data sparsification based on zero suppression combined with a small and dense pixel matrix. The pixel array composed of 576 lines of 1152 pixels is read out in a column-parallel rolling shutter mode. One discriminator per column and the digital data processing circuits are located on the same chip in a 3 mm wide area beneath the pixel matrix allowing for binary hit encoding. This area also contains the circuits for pedestal correction and the configuration memory, which is programmed via JTAG. The preprocessed digital data is read out via two 80 Mbit/s LVDS links per sensor, which stream their data continuously based on a low-level protocol.
Within the scope of this thesis, a readout concept of the CBM-MVD is proposed and studied based on the current MIMOSA sensor generation. The backbone of the system is formed by the Readout Controller boards (ROCs) featuring FPGA microchips and optical links. Several ROC prototypes are considered using the synergy with the HADES Experiment. Finally, the TRB3 board is selected as a possible candidate for the initial FAIR experiments. Furthermore, a highly scalable, hardware independent FPGA firmware is implemented in order to steer and read out multiple MIMOSA-26 sensors. The reconfigurable firmware is also designed with the support for future MIMOSA sensor generations. The free-streaming sensor data is deserialized and error-checked, prior to its transmission over a suitable network interface. In order to demonstrate the validity of the concept, a readout network similar to the HADES Data Acquisition (DAQ) system is developed. The ROC is tested on the HADES TRB2 boards and data is acquired using suitable MAPS add-on boards and the TrbNet protocol.
In the context of the CBM-MVD prototype project, a readout network with 12 MIMOSA-26 sensors has been prepared for an in-beam test at the CERN SPS facility. A comprehensive control system is designed comprising customized software tools. The subsequent in-beam test is used to validate the design choices. As a result, the system could be operated synchronously and dead-time free for several days. The readout network behavior in a realistic operating environment has been carefully studied with the outcome the the TrbNet based approach handles the MVD prototype setup without any difficulties. A procedure to keep the sensors synchronous even in case of a data overflow has been pioneered as well. After the beam test, improvements and conceptual changes to the readout systems are being addressed which allow an integration into the global CBM DAQ system.
We discuss the effects of the final hadronic state, in ultra-relativistic nuclear collisions, on hadronic resonance properties and measurable production rates. In particular we will compare our results with recent ALICE data on resonance production. We show that the hadronic phase of the system evolution has a considerable impact on the measured resonance ratios and pT spectra. We also discuss some of the remaining uncertainties in the model and how they may be addressed in future studies.
Two-particle angular correlations between unidentified charged trigger and associated particles are measured by the ALICE detector in p–Pb collisions at a nucleon–nucleon centre-of-mass energy of 5.02 TeV. The transverse-momentum range 0.7 < pT,assoc < pT,trig < 5.0 GeV/c is examined, to include correlations induced by jets originating from low momentum-transfer scatterings (minijets). The correlations expressed as associated yield per trigger particle are obtained in the pseudorapidity range |η| < 0.9. The near-side long-range pseudorapidity correlations observed in high-multiplicity p–Pb collisions are subtracted from both near-side short-range and away-side correlations in order to remove the non-jet-like components. The yields in the jet-like peaks are found to be invariant with event multiplicity with the exception of events with low multiplicity. This invariance is consistent with the particles being produced via the incoherent fragmentation of multiple parton–parton scatterings, while the yield related to the previously observed ridge structures is not jet-related. The number of uncorrelated sources of particle production is found to increase linearly with multiplicity, suggesting no saturation of the number of multi-parton interactions even in the highest multiplicity p–Pb collisions. Further, the number scales only in the intermediate multiplicity region with the number of binary nucleon–nucleon collisions estimated with a Glauber Monte-Carlo simulation.
The technique of self absorption has been applied for the first time to study the decay pattern of low-lying dipole states of 140Ce. In particular, ground-state transition widths 0 and branching ratios 0/ to the ground state have been investigated in the energy domain of the pygmy dipole resonance. Relative self-absorption measurements allow for a model-independent determination of 0. Without the need to perform a full spectroscopy of all decay channels, also the branching ratio to the ground state can be determined. The experiment on 140Ce was conducted at the bremsstrahlung facility of the superconducting Darmstadt electron linear accelerator S-DALINAC. In total, the self-absorption and, thus, 0 were determined for 104 excited states of 140Ce. The obtained results are presented and discussed with respect to simulations of γ cascades using the DICEBOX code.
An overview is given on the experimental study of physics with relativistic heavy-ion collisions, with emphasis on recent measurements at the Large Hadron Collider (LHC) and the Relativistic Heavy Ion Collider (RHIC). The focus here is laid on p–Pb collisions at the LHC and the corresponding d–Au measurements at RHIC. The topics touched are “collectivity and approach to equilibrium”, “high pT and jets”, “heavy flavour and electroweak bosons” and “search for exotic objects”.
The chiral phase transition of Quantum Chromo Dynamics (QCD) is investigated with the help of the linear-sigma model and a numerical transport simulation. The scope are non-equilibrium and critical effects of the different type of orders of the transition. Additionally, a mathematical and numerical method is developed which allows to simulate a particle-wave duality and non-continuous interactions, even for classical systems.
We present an overview on the resonance dynamics within the microscopic parton-hadron-string dynamics (PHSD) approach which incorporates explicit partonic degrees-of-freedom in terms of strongly interacting quasiparticles (quarks and gluons) in line with an equation-of-state from lattice QCD as well as the dynamical hadronization and hadronic collision dynamics in the final reaction phase. We discuss how the vector meson resonances can be used as a probe of the in-medium effects and demostrate that the low mass dilepton spectra show visible in-medium effects from dynamical vector-meson spectral functions from SIS to SPS energies whereas at RHIC and LHC energies such medium effects become more moderate. We show also that the intermediate mass spectra are dominated by the radiation from the partonic degrees of freedom at RHIC and LHC energies.
Thermal dilepton radiation from the hot fireballs created in high-energy heavy-ion collisions provides unique insights into the properties of the produced medium. We first show how the predictions of hadronic many-body theory for a melting ρ meson, coupled with quark–gluon plasma emission utilizing a modern lattice-QCD based equation of state, yield a quantitative description of dilepton spectra in heavy-ion collisions at the SPS and the RHIC beam energy scan program. We utilize these results to systematically extract the excess yields and their invariant-mass spectral slopes to predict the excitation function of fireball lifetimes and (early) temperatures, respectively. We thereby demonstrate that future measurements of these quantities can yield unprecedented information on basic fireball properties. Specifically, our predictions quantify the relation between the measured and maximal fireball temperature, and the proportionality of excess yield and total lifetime. This information can serve as a “caloric” curve to search for a first-order QCD phase transition, and to detect non-monotonous lifetime variations possibly related to critical phenomena.
Partial cross sections of the 89Y(p, γ )90Zr reaction have been measured to investigate the γ-ray strength function in the neutron–magic nucleus 90Zr. For five proton energies between E p = 3.65 MeV and E p = 4.70 MeV partial cross sections for the population of seven discrete states in 90Zr have been determined by means of in-beam γ-ray spectroscopy. Since these γ-ray transitions are dominantly of E1 character, the present measurement allows an access to the low-lying dipole strength in 90Zr. A γ-ray strength function based on the experimental data could be extracted, which is used to describe the total and partial cross sections of this reaction by Hauser–Feshbach calculations successfully. Significant differences with respect to previously measured strength functions from photoabsorption data point towards deviations from the Brink–Axel hypothesis relating the photo-excitation and de-excitation strength functions.
We present in this paper spectral and spatial characteristics of terahertz emission from standard dipole antenna structures used as emitters depending on the substrate material. All antenna structures were lithographically fabricated on low-temperature (LT) grown, few-micrometers-thick gallium arsenide (GaAs) layers. To investigate the effect of the substrate material on the radiation pattern of terahertz beams, either semi-insulating gallium arsenide or high-resistivity silicon substrate wafers have been used. As detector a standard 40 µm long dipole antenna on a semi-insulating GaAs substrate with a low-temperature grown gallium arsenide layer on it has been employed; this configuration allows for broadband detection and is still efficient enough for the characterization purpose. Strong dependence of the radiation pattern on the substrate used for the terahertz source is demonstrated. The measured patterns and differences between the two cases of substrates are well explained by means of classical diffraction.
Low-level-laser therapy (LLLT) is an effective complementary treatment, especially for anti-inflammation and wound healing in which dermis or mucus mast cells (MCs) are involved. In periphery, MCs crosstalk with neurons via purinergic signals and participate in various physiological and pathophysiological processes. Whether extracellular ATP, an important purine in purinergic signaling, of MCs and neurons could be modulated by irradiation remains unknown. In this study, effects of red-laser irradiation on extracellular ATP content of MCs and dorsal root ganglia (DRG) neurons were investigated and underlying mechanisms were explored in vitro. Our results show that irradiation led to elevation of extracellular ATP level in the human mast cell line HMC-1 in a dose-dependent manner, which was accompanied by elevation of intracellular ATP content, an indicator for ATP synthesis, together with [Ca2+]i elevation, a trigger signal for exocytotic ATP release. In contrast to MCs, irradiation attenuated the extracellular ATP content of neurons, which could be abolished by ARL 67156, a nonspecific ecto-ATPases inhibitor. Our results suggest that irradiation potentiates extracellular ATP of MCs by promoting ATP synthesis and release and attenuates extracellular ATP of neurons by upregulating ecto-ATPase activity. The opposite responses of these two cell types indicate complex mechanisms underlying LLLT.
We investigate charmonium production in Pb + Pb collisions at LHC beam energy Elab=2.76A TeV at fixed-target experiment (√sNN = 72 GeV). In the frame of a transport approach including cold and hot nuclear matter effects on charmonium evolution, we focus on the antishadowing effect on the nuclear modification factors RAA and rAA for the J/ψ yield and transverse momentum. The yield is more suppressed at less forward rapidity (ylab ≃ 2) than that at very forward rapidity (ylab ≃ 4) due to the shadowing and antishadowing in different rapidity bins.
In this work, the complex structure of ionization and dissociation pathways on the potential energy curves in small molecules were investigated that are initiated by the absorption of a sequence of multi-color pulses in the XUV, VUV, and IR spectrum. Femtosecond pump-probe spectroscopy was used to track the evolution of nuclear dynamics in neutral hydrogen molecules. Previously unpublished excitation and ionization pathways leading to the dissociative ionization of hydrogen molecules were investigated by employing 3D momentum imaging spectroscopy. These studies were extended to oxygen molecules where an XUV attosecond pulse train coherently ionized several electronic states of O2+ followed by the dissociation of the molecule via multiple pathways. The infrared electric field of the driving laser was then used to couple the electronic and nuclear wave-packets, thus, manipulating the dissociation dynamics of the molecule on an attosecond time scale.
In order to perform the experiments presented here, a novel experimental setup was developed and constructed. It combines an existing high-flux High Harmonic Generation light source that delivers attosecond pulse trains in the VUV and XUV spectrum with a state-of-the-art 3D momentum imaging apparatus (COLTRIMS), as well as a beamline consisting of several experimental tools enabling the selection, characterization, and propagation of the photon spectrum.
Am GSI Helmholtzzentrum für Schwerionenforschung in Darmstadt, wird für die Erweiterung der Forschungsmöglichkeiten am Bau des FAIR Projektes gearbeitet. Hierfür wird unter anderem ein Ringbeschleuniger gebaut (SIS100), der mit 100Tm den bestehenden Ring (SIS18) in magnetischer Steifigkeit ergänzen wird. Um SIS100 an SIS18 anzubinden, wird eine Transferstrecke benötigt, welche den Transfer von Ionen zwischen den Ringen übernimmt. In solchen Transferstrecken werden Quadrupollinsen mit hohen Gradienten benötigt. Ebenso werden für die finale Fokussierung von hochintensiven Strahlpulsen aus Synchrotronen auf Targets Linsen mit hohen Feldgradienten benötigt. Allerdings sind die Pulse nur sehr kurz und das Tastverhältnis bei Synchrotronen sehr klein. Daher sollte ein gepulster Fokussiermagnet entwickelt werden, der den hohen Gradientenanforderungen gerecht wird und sowohl platz- als auch energiesparend ist. Die vorliegende Arbeit befasst sich mit der Auslegung des elektrischen Schaltkreises, der Simulation des Magnetfeldes und der konstruktiven Umsetzung eines solchen gepulsten Quadrupols. Der elektrische Schaltkreis ist so ausgelegt, dass eine hohe Repetitionsrate zur Fokussierung für Teilchenpakete möglich ist. Die Linse wurde aus einer Luftspule ohne Eisenjoch aufgebaut. Die cos(2θ)-Verteilung des Stroms durch die Leiter wurde durch ein Design gesichert, welches den Skin-Effekt berücksichtigt und entsprechend ausgelegte Litzenkabel verwendet. Um die Magnetfeldverteilung des Fokussiermagneten zu untersuchen, wurden statische und transiente Simulationen mit dem Programm CST Mircowave Studio Suite vorgenommen. Zentraler Punkt bei der Neuentwicklung waren die Luftspulen. Um einen linearen Magnetfeldanstieg von der Strahlachse zum Aperturrand zu gewährleisten, muss die Stromverteilung in der Leiterspule so homogen wie möglich sein. Um bei Pulslängen von 170 µsec den Skineffekt zu berücksichtigen, wurde die Leiterspule aus HF-Litzen von je mehreren hundert Einzelleitern zusammengestellt, die jeweils gegeneinander isoliert und in Bündeln miteinander verdrillt sind. Außerdem wurde die Linse mit einer lamellierten Schirmung versehen, um das Magnetfeld effektiv nutzen zu können. Ziel der Auslegung war es, zusammen mit einem zweiten Quadrupol im Duplett einen Strahl mit einer magnetischen Steifigkeit von 11 Tm und einer Bunchlänge von 2µsec auf einen Punkt von 0,5 mm Radius zu fokussieren. Bei dem hierfür angestrebten Gradienten von 76 T/m wird eine maximale Stromamplitude von 400 kA benötigt. Im Rahmen dieser Arbeit wurde die Linse ausgelegt, konstruiert und gebaut. Die Funktionalität wurde untersucht und die Feldqualität wurde vermessen und zeigten die erwarteten Parameter. Bei 26 kA Messstrom wurden im Zentrum des Magneten ein maximaler Gradient von 4,5 T/m und Feldwerte von 0,11 T ermittelt. Somit liegt die Abweichung des gemessenen Gradienten bei ca. 5 %. Die durchgängige Umsetzung der homogenen Verteilung der Leiterbündel in der Luftspule und eine vollständige Kompensation des Skineffekts konnten nicht nachgewiesen werden. Jedoch konnte der Einfluss der Kabelzuleitung des Quadrupols auf den Magnetfeldverlauf in den Simulationen und Messungen nachgewiesen werden. Weiterhin wurde für den energieeffizienten Einsatz im Transferkanal zwischen SIS18 und SIS100 ein Energierückgewinnungsschaltkreis entwickelt, der eine Ersparnis von 84 % der Betriebsleistung ermöglicht.
Ziel der vorliegenden Arbeit ist der Aufbau von koaxialen Plasmabeschleunigern und deren Verwendung für die Untersuchung der Eigenschaften von kollidierenden Plasmen. Zukünftig sollen diese kollidierenden Plasmen als intensive Strahlungsquelle im Bereich der ultravioletten (UV-) und vakuumultravioletten (VUV-)Strahlung sowie in der Grundlagenforschung als Target zur Ionenstrahl-Plasma-Wechselwirkung Verwendung finden. Für diese Anwendungen steht dabei eine Betrachtung der physikalischen Grundlagen im Vordergrund. So sind neben der Kenntnis der Plasmadynamik auch Aussagen bezüglich der Elektronendichte, der Elektronentemperatur und der Strahlungsintensität von Bedeutung. Im Einzelnen konnte gezeigt werden, dass es möglich ist, durch eine Plasmakollision die Elektronendichte des Plasmas im Vergleich zu der eines einzelnen Plasmas deutlich zu erhöhen - im Maximalfall um den Faktor vier. Gleichzeitig stieg durch die Plasmakollision die Lichtintensität im Wellenlängenbereich der UV- und VUV-Strahlung um den Faktor drei an...
Neutron capture cross sections of unstable isotopes are important for neutron-induced nucleosynthesis as well as for technological applications. A combination of a radioactive beam facility, an ion storage ring and a high flux reactor would allow a direct measurement of neutron induced reactions over a wide energy range on isotopes with half lives down to minutes. The idea is to measure neutron-induced reactions on radioactive ions in inverse kinematics. This means, the radioactive ions will pass through a neutron target. In order to efficiently use the rare nuclides as well as to enhance the luminosity, the exotic nuclides can be stored in an ion storage ring. The neutron target can be the core of a research reactor, where one of the central fuel elements is replaced by the evacuated beam pipe of the storage ring. Using particle detectors and Schottky spectroscopy, most of the important neutron-induced reactions, such as (n,γ), (n,p), (n,α), (n,2n), or (n,f), could be investigated.
p-process nucleosynthesis via proton-capture reactions in thermonuclear supernovae explosions
(2015)
Model calculations within the framework of the so-called γ process show an underproduction of the p nucleus with the highest isotopic abundace 92Mo. This discrepancy can be narrowed by taking into account the alternative production site of a type Ia supernova explosion. Here, the nucleus 92Mo can be produced by a sequence of proton-capture reactions. The amount of 92Mo nuclei produced via this reaction chain is most sensitive to the reactions 90Zr(p,γ) and 91Nb(p,γ). Both rates have to be investigated experimentally to study the impact of this nucleosynthesis aspect on the long-standing 92Mo-problem. We have already measured the proton-capture reaction on 90Zr using high-resolution in-beam γ-ray spectroscopy. In this contribution, we will present our preliminary results of the total cross sections as well as the partial cross sections. Furthermore, we plan to measure the 91Nb(p,γ) reaction soon. Due to the radioactive target material, the 91Nb nuclei have to be produced prior to the experiment. The current status of this production will be presented in this contribution.
Die vorliegende Arbeit handelt von der Entwicklung, dem Bau, den Zwischenmessungen sowie den abschließenden Tests unter kryogenen Bedingungen einer neuartigen, supraleitenden CH-Struktur für Strahlbetrieb mit hoher Strahllast. Diese Struktur setzt das Konzept des erfolgreich getesteten 19-zelligen 360 MHz CH-Prototypen fort, der einen weltweiten Spitzenwert in Bezug auf Beschleunigungsspannung im Niederenergiesegment erreichte, jedoch wurden einige Aspekte weiterentwickelt bzw. den neuen Rahmenbedingungen angepasst. Bei dem neuen Resonator wurde der Schwerpunkt auf ein kompaktes Design, effektives Tuning, leichte Präparationsmöglichkeiten und auf den Einsatz eines Leistungskopplers für Strahlbetrieb gelegt. Die Resonatorgeometrie besteht aus sieben Beschleunigungszellen, wird bei 325 MHz betrieben und das Geschwindigkeitsprofil ist auf eine Teilcheneingangsenergie von 11.4 MeV/u ausgelegt. Veränderungen liegen in der um 90° gedrehten Stützengeometrie vor, um Platz für Tuner und Kopplerflansche zu gewährleisten, und in der Verwendung von schrägen Stützen am Resonatorein- und ausgang zur Verkürzung der Tanklänge und Erzielung eines flachen Feldverlaufs. Weiterhin wurden pro Tankdeckel zwei zusätzliche Spülflansche für die chemische Präparation sowie für die Hochdruckspüle mit hochreinem Wasser hinzugefügt. Das Tuning der Kavität erfolgt über einen neuartigen Ansatz, indem zwei bewegliche Balgtuner in das Resonatorvolumen eingebracht werden und extern über eine Tunerstange ausgelenkt werden können. Der Antrieb der Stange soll im späteren Betrieb wahlweise über einen Schrittmotor oder einen Piezoaktor stattfinden. Für ein langsames/ statisches Tuning kann der Schrittmotor den Tuner im Bereich +/- 1 mm auslenken, um größeren Frequenzabweichungen in der Größenordnung 100 kHz nach dem Abkühlen entgegenzuwirken. Das schnelle Tuning im niedrigen kHz-Bereich wird von einem Piezoaktor übernommen, welcher den Balg um einige µm bewegen kann, um Microphonics oder Lorentz-Force-Detuning zu kompensieren. Der Resonator wird von einem aus Titan bestehendem Heliummantel umgeben, wodurch ein geschlossener Heliumkreislauf gebildet wird.
Derzeit befinden sich mehrere Projekte in der Planung bzw. im Bau, welche auf eine derartige Resonatorgeometrie zurückgreifen könnten. An der GSI basiert der Hauptteil des zukünftigen cw LINAC auf supraleitenden CH-Strukturen, um einen Strahl für die Synthese neuer, superschwerer Elemente zu liefern. Weiterhin könnte ein Upgrade des vorhandenen GSI UNILAC durch den Einsatz von supraleitenden CH-Resonatoren gestaltet werden. Zudem besteht die Möglichkeit, die bisherige Alvarez-Sektion des UNILAC alternativ durch eine kompakte, supraleitende CH-Sektion zu realisieren. Ebenfalls sollen die beiden parallelbetriebenen Injektorsektionen des MYRRHA-Projektes durch den Einsatz von supraleitenden CH-Strukturen erfolgen.
Partial wave analysis of the reaction p(3.5 GeV) + p → pK +Λ to search for the "ppK−" bound state
(2015)
Employing the Bonn–Gatchina partial wave analysis framework (PWA), we have analyzed HADES data of the reaction p(3.5 GeV) + p → pK +Λ. This reaction might contain information about the kaonic cluster “ppK −” (with quantum numbers J P = 0− and total isospin I = 1/2) via its decay into pΛ. Due to interference effects in our coherent description of the data, a hypothetical KNN (or, specifically “ppK −”) cluster signal need not necessarily show up as a pronounced feature (e.g. a peak) in an invariant mass spectrum like pΛ. Our PWA analysis includes a variety of resonant and non-resonant intermediate states and delivers a good description of our data (various angular distributions and two-hadron invariant mass spectra) without a contribution of a KNN cluster. At a confidence level of CLs = 95% such a cluster cannot contribute more than 2–12% to the total cross section with a pK +Λ final state, which translates into a production cross-section between 0.7 μb and 4.2 μb, respectively. The range of the upper limit depends on the assumed cluster mass, width and production process.
We investigate the properties of the QCD matter across the deconfinement phase transition in the scope of the parton-hadron string dynamics (PHSD) transport approach. We present here in particular the results on the electromagnetic radiation, i.e. photon and dilepton production, in relativistic heavy-ion collisions. By comparing our calculations for the heavy-ion collisions to the available data, we determine the relative importance of the various production sources and address the possible origin of the observed strong elliptic flow v2 of direct photons. We argue that the different centrality dependence of the hadronic and partonic sources for direct photon production in nucleusnucleus collisions can be employed to shed some more light on the origin of the photon v2 “puzzle”. While the dilepton spectra at low invariant mass show in-medium effects like an enhancement from multiple baryonic resonance formation or a collisional broadening of the vector meson spectral functions, the dilepton yield at high invariant masses (above 1.1 GeV) is dominated by QGP contributions for central heavy-ion collisions at ultra-relativistic energies. This allows to have an independent view on the parton dynamics via their electromagnetic massive radiation.
Correlation functions provide information on the properties of mesons in vacuum and of hot nuclear matter. In this work, we present a new method to derive a well-defined spectral representation for correlation functions. Combining this method with the quark gap equation and the inhomogeneous Bethe–Salpeter equation in the rainbow-ladder approximation, we calculate in-vacuum masses of light mesons and the electrical conductivity of the quark–gluon plasma. The analysis can be extended to other observables of strong-interaction systems.
Currently, the structure of the X(3872) meson is unknown. Different competing models of the exotic state X(3872) exist, including the possibilities that this state is either a mesonic molecule with dominating D0D¯ ∗0 + c.c. composition, a tetraquark, or a -gluon hybrid state. It is expected that the X(3872) state is rather strongly coupled to the channel and, therefore, can be produced in and collisions at PANDA. We propose to test the hypothetical molecular structure of by studying the D or D¯⁎ stripping reactions on a nuclear residue.
Im Rahmen des FAIR Projekts sollen in den Ringbeschleunigern SIS18 und SIS100 Ionenstrahlen mit höchster Intensität beschleunigt werden. Um die Raumladungsgrenze zu erhöhen, werden dazu Ionen mit mittleren Ladungszuständen verwendet. Diese haben aber größere Wirkungsquerschnitte für Umladung in Wechselwirkungen mit im Strahlvakuum vorhandenen Restgasteilchen als hochgeladene Ionen. Kommt es zu Strahlverlusten, lösen die verlorenen Ionen am Auftreffort weitere Restgasteilchen von den Wänden des Strahlrohrs und erhöhen so lokal die Restgasdichte. Die Qualität des Vakuums ist deshalb für einen stabilen Strahlbetrieb essentiell.
Im SIS100 kommen kryogene Vakuumkammern zum Einsatz, deren Wände als Kryosorptionspumpen für Wasserstoff und Helium dienen und alle schwereren Restgaskomponenten durch Kryokondensation binden können. Um die Vorhersagegenauigkeit des abteilungsinternen Programms „StrahlSim“ zur Simulation des dynamischen Vakuums zu verbessern, wurden im Rahmen dieser Arbeit das Saugvermögen und die Pumpkapazität für Wasserstoff auf einer Edelstahloberfläche untersucht.
Dazu wurde ein UHV Teststand entwickelt und aufgebaut. Dieser besteht aus einem warmen Diagnoseteil, mit dem der Gasfluss in und aus dem kalten Teil überwacht werden kann. Im kalten Teil befindet sich eine kleine Kammer mit Edelstahlwänden, für die verschiedene Temperaturen zwischen 7 und 31 K eingestellt werden können. Diese Kammer repräsentiert ein kleines Stück kryogenes Strahlrohr. Bei verschiedenen Temperaturen und Oberflächenbelegungen wurden dort jeweils das Saugvermögen und der sich einstellende Gleichgewichtsdruck im Bereich von 4E-11 bis 2E-7 mbar gemessen. Die Gleichgewichtsdrücke bei einer bestimmten Temperatur bei wachsender Oberflächenbelegung werden als Adsorptionsisotherme bezeichnet. Sie ergeben sich aus dem Gleichgewicht von thermisch desorbierenden Teilchen und deren Readsorption. Die kalte Kammer wird umgeben von einem Kryostaten, bestehend aus thermischem Schild und Außentank. Für diesen wurde die thermische Auslegung durchgeführt, die Konstruktion erfolgte extern.
Aus dem gemessenen Saugvermögen konnte die Haftwahrscheinlichkeit berechnet werden. Sie stellte sich als im Rahmen der Messgenauigkeit als unabhängig von Belegung und Temperatur heraus. Ihr Wert liegt nahe 1 mit einer Unsicherheit bis 0,1. Da sämtliche Oberflächen in den kryogenen Bereichen als Pumpen wirken, ist dieser Wert mehr als ausreichend um die für den stabilen Strahlbetrieb nötigen Vakuumbedingungen zu erreichen und stabil zu halten.
Die Isothermen hingegen sind stark von der Temperatur abhängig. Über 18 K liegen die Gleichgewichtsdrücke bereits bei minimalen Oberflächenbelegungen in für den Strahlbetrieb nicht tolerierbaren Bereichen. Mit sinkender Temperatur können die Oberflächen immer mehr Gas aufnehmen. Doch auch bei den tiefsten vermessenen Temperaturen zwischen 7 und 8 K ist ein stabiler Strahlbetrieb nur bei Belegungen von deutlich unter einer halben Monolage, etwa 5E14 Wasserstoffmoleküle pro cm², möglich.
Diese Ergebnisse wurden in StrahlSim implementiert. Zunächst wurde der Code für die Simulation von teilweise kryogenen Beschleunigern angepasst. Die wichtigste Änderung war die Einführung von thermischer Transpiration. Sie bewirkt, dass die Restgasteilchendichte an Kalt-Warm-Übergängen auf der kalten Seite erhöht ist. Mit dieser Änderung und den implementierten Ergebnissen aus den Messungen wurden Simulationen für das SIS100 durchgeführt. Mit den Isothermen konnten die bei verschiedenen Temperaturen und Bedeckungen zu erwartenden Durchschnittsdichten berechnet werden, die wiederum bestimmend für die Strahlverluste sind. Des Weiteren wurde ein mehrwöchiger Dauerbetrieb simuliert. Es zeigt sich zunächst eine Verschlechterung der Vakuumbedingungen auf Grund der langsamen Sättigung der Oberflächen. Diese verlangsamt sich aber immer mehr und stabilisiert sich bevor zu hohe Restgasdichten auftreten. Im schlechtesten Fall sind die kryogenen Oberflächen so weit gesättigt, dass sie genauso viele Gasteilchen thermisch desorbieren wie sie adsorbieren, sie also praktisch passiv sind. Auch dann wäre die Gleichgewichtsdichte im Beschleuniger noch tief genug, um Verluste durch Umladung hinreichend niedrig zu halten.
Als problematisch könnten sich hingegen dynamische Temperaturerhöhungen der Kammerwände erweisen. In diesem Fall stellt sich praktisch verzögerungsfrei der durch die neue Isotherme definierte Gleichgewichtsdruck ein, der auch bei wenigen Kelvin Temperaturunterschied bereits um mehrere Größenordnungen höher liegen kann. Sind Temperaturerhöhungen während des Betriebs zu erwarten, sollten die Oberflächen so frei wie möglich von Wasserstoff gehalten werden. Dazu kann man sich eben diesen Effekt zunutze machen: Durch temporäres Anwärmen der Oberflächen unmittelbar vor dem Strahlbetrieb können die Oberflächen schnell von Wasserstoff befreit werden, der dann von lokalisierten Pumpen aus dem System entfernt werden kann.
We present an extensive experimental study of the recently predicted pygmy quadrupole resonance (PQR) in Sn isotopes, where complementary probes were used. In this study, (α,α' γ ) and (γ , γ') experiments were performed on 124Sn. In both reactions, Jπ = 2+ states below an excitation energy of 5 MeV were populated. The E2 strength integrated over the full transition densities could be extracted from the (γ , γ') experiment, while the (α,α'γ ) experiment at the chosen kinematics strongly favors the excitation of surface modes because of the strong α-particle absorption in the nuclear interior. The excitation of such modes is in accordance with the quadrupole-type oscillation of the neutron skin predicted by a microscopic approach based on self-consistent density functional theory and the quasiparticle-phonon model (QPM). The newly determined γ -decay branching ratios hint at a non-statistical character of the E2 strength, as it has also been recently pointed out for the case of the pygmy dipole resonance (PDR). This allows us to distinguish between PQR-type and multiphonon excitations and, consequently, supports the recent first experimental indications of a PQR in 124Sn.
The planned Facility for Antiproton and Ion Research (FAIR) at GSI has to cope with a wide range of beam intensities in its high-energy beam transport systems and in the storage rings. To meet the requirements of a non-intercepting intensity measurement down to nA range, it is planned to install a number of Cryogenic Current Comparator (CCC) units at different locations in the FAIR beamlines. In this work, the first CCC system for intensity measurement of heavy ion beams, which was developed at GSI, was re-commissioned and upgraded to be used as a 'GSI - CCC prototype' for extensive optimization and development of an improved CCC for FAIR. After installation of a new SQUID sensor and related electronics, as well as implementation of improved data acquisition components, successful beam current measurements were performed at a SIS18 extraction line. The measured intensity values were compared with those of a Secondary Electron Monitor (SEM). Furthermore, the spill-structure of a slowly extracted beam was measured and analyzed, investigating its improvement due to bunching during the slow-extraction process. Due to the extreme sensitivity of the superconducting sensor, the determined intensity values as well as the adjustment of the system for optimal performance are strongly influenced by the numerous noise sources of the accelerators environment. For this reason, detailed studies of different effects caused by noise have been carried out, which are presented together with proposals to reduce them. Similarly, studies were performed to increase the dynamic range and overcome slew rate limitations, the results of which are illustrated and discussed as well. By combining the various optimizations and characterizations of the GSI CCC prototype with the experiences made during beam operation, criteria for a more efficient CCC System could be worked out, which are presented in this work. The details of this new design are worked out with respect to the corresponding boundary conditions at FAIR. Larger beam tube diameters, higher radiation resistivity and UHV requirements are of particular importance for the cryostat. At the same time these parameters affect the CCC superconducting magnetic shielding, which again has significant influence on the current resolution of the system. In order to investigate the influence of the geometry of the superconducting magnetic shield on different magnetic field components and to optimize the attenuation, FEM simulations have been performed. Based on the results of these calculations, modifications of the shield geometry for optimum damping behavior are proposed and discussed in the thesis.
The decay behavior of low-lying dipole states in 140Ce was investigated exploiting the γ3-setup at the HIγS facility using quasi-monochromatic photon beams. Branching ratios of individual excited states as well as average branching ratios to low-lying states have been extracted using γ – γ coincidence measurements. The comparison of the average branching ratios to QPM calculations shows a remarkable agreement between experiment and theory in the energy range from 5.0 to 8.5 MeV.
The neutron capture cross section of 58Ni was measured at the neutron time of flight facility n_TOF at CERN, from 27 meV to 400 keV neutron energy. Special care has been taken to identify all the possible sources of background, with the so-called neutron background obtained for the first time using high-precision GEANT4 simulations. The energy range up to 122 keV was treated as the resolved resonance region, where 51 resonances were identified and analyzed by a multilevel R-matrix code SAMMY. Above 122 keV the code SESH was used in analyzing the unresolved resonance region of the capture yield. Maxwellian averaged cross sections were calculated in the temperature range of kT = 5 – 100 keV, and their astrophysical implications were investigated.
The dynamics of strange pseudoscalar and vector mesons in hot and dense nuclear matter is studied within a chiral unitary framework in coupled channels. Our results set up the starting point for implementations in microscopic transport approaches of heavy-ion collisions, particularly at the conditions of the forthcoming experiments at GSI/FAIR and NICA-Dubna. In the K̄ N sector we focus on the calculation of (off-shell) transition rates for the most relevant binary reactions involved in strangeness production close to threshold energies, with special attention to the excitation of sub-threshold hyperon resonances and isospin effects (e.g. K̄ p vs K̄ n). We also give an overview of recent theoretical developments regarding the dynamics of strange vector mesons (K*, K̄* and ϕ) in the nuclear medium, in connection with experimental activity from heavy-ion collisions and nuclear production reactions. We emphasize the role of hadronic decay modes and the excitation of hyperon resonances as the driving mechanisms modifying the properties of vector mesons.
Future FAIR experiments have to deal with very high input rates, large track multiplicities, make full event reconstruction and selection on-line on a large dedicated computer farm equipped with heterogeneous many-core CPU/GPU compute nodes. To develop efficient and fast algorithms, which are optimized for parallel computations, is a challenge for the groups of experts dealing with the HPC computing. Here we present and discuss the status and perspectives of the data reconstruction and physics analysis software of one of the future FAIR experiments, namely, the CBM experiment.
In the framework of the so-called extended linear sigma model (eLSM), we include a pseudoscalar glueball with a mass of 2.6 GeV (as predicted by Lattice-QCD simulations) and we compute the two- and three-body decays into scalar and pseudoscalar mesons. This study is relevant for the future PANDA experiment at the FAIR facility. As a second step, we extend the eLSM by including the charm quark according to the global U(4)R × U(4)L chiral symmetry. We compute the masses, weak decay constants and strong decay widths of open charmed mesons. The precise description of the decays of open charmed states is important for the CBM experiment at FAIR.
The ALICE detector at the LHC is used to study the properties of the Quark-Gluon Plasma produced in heavy-ion collisions. As a reference measurement, also the analysis of proton-proton (pp) collisions is very important. In the study presented here, event-by-event fluctuations of the mean transverse momentum are analysed in pp collisions at √s = 0.9, 2.76 and 7 TeV, and Pb–Pb collisions at √sNN = 2.76 TeV as a function of the charged-particle multiplicity. In both systems, dynamical fluctuations beyond the statistical expectation are observed. In pp collisions, no significant dependence on collision energy is found, even in comparison to inclusive results at much lower collision energies. Likewise, central A–A collisions show only little dependence on collision energy. The multiplicity dependence observed in peripheral Pb–Pb data is in agreement with that in pp collisions. Going to more central Pb–Pb collisions, a clear deviation from this trend is found, reaching a significant reduction of the fluctuations in most central collisions. Comparisons toMonte Carlo event generators show good agreement in pp, but rather large differences in Pb–Pb collisions.
Dilepton production in heavy-ion collisions at top SPS energy is investigated within a coarse-graining approach that combines an underlying microscopic evolution of the nuclear reaction with the application of medium-modified spectral functions. Extracting local energy and baryon density for a grid of small space-time cells and going to each cell’s rest frame enables to determine local temperature and chemical potential by application of an equation of state. This allows for the calculation of thermal dilepton emission. We apply and compare two different spectral functions for the ρ: A hadronic many-body calculation and an approach that uses empirical scattering amplitudes. Quantitatively good agreement of the model calculations with the data from the NA60 collaboration is achieved for both spectral functions, but in detail the hadronic many-body approach leads to a better description, especially of the broadening around the pole mass of the ρ and for the low-mass excess. We further show that the presence of a pion chemical potential significantly influences the dilepton yield.
Due to their penetrating nature, electromagnetic probes, i.e., lepton-antilepton pairs (dileptons) and photons are unique tools to gain insight into the nature of the hot and dense medium of strongly-interacting particles created in relativistic heavy-ion collisions, including hints to the nature of the restoration of chiral symmetry of QCD. Of particular interest are the spectral properties of the electromagnetic current-correlation function of these particles within the dense and/or hot medium. The related theoretical investigations of the in-medium properties of the involved particles in both the partonic and hadronic part of the QCD phase diagram underline the importance of a proper understanding of the properties of various hadron resonances in the medium.
After reviewing the description of an unstable state in the framework of nonrelativistic Quantum Mechanics (QM) and relativistic Quantum Field Theory (QFT), we consider the effect of pulsed, ideal measurements repeated at equal time intervals on the lifetime of an unstable system. In particular, we investigate the case in which the ‘bare’ survival probability is an exact exponential (a very good approximation in both QM and QFT), but the measurement apparatus can detect the decay products only in a certain energy range. We show that the Quantum Zeno Effect can occur in this framework as well.
A series of photon scattering experiments has been performed on the double-beta decay partners 76Ge and 76Se, in order to investigate their dipole response up to the neutron separation threshold. Gamma-ray beams from bremsstrahlung at the S-DALINAC and from Compton-backscattering at HIGS have been used to measure absolute cross sections and parities of dipole excited states, respectively. The HIGS data allows for indirect measurement of averaged branching ratios, which leads to significant corrections in the observed excitation cross sections. Results are compared to statistical calculations, to test photon strength functions and the Axel-Brink hypothesis.
The method of relative self absorption is based on the technique of nuclear resonance fluorescence measurements. It allows for a model-independent determination of ground-state transition widths, natural level widths, and, consequently, of branching ratios to the ground state for individual excitations. Relative self–absorption experiments have been performed on the nuclei 6Li and 140Ce. In order to investigate the total level width for the 0+1, T = 1 level at 3563 keV in 6Li, a high-precision self-absorption measurement has been performed. In the case of 140Ce, self absorption has been applied for the first time to study decay widths of dipole-excited states in the energy regime of the pygmy dipole resonance.
The advent of improved experimental and theoretical techniques has brought a lot of attention to the electric dipole (E1) response of atomic nuclei in the last decade. The extensive studies have led to the observation and interpretation of a concentration of E1 strength energetically below the Giant Dipole Resonance in many nuclei. This phenomenon is commonly denoted as Pygmy Dipole Resonance (PDR). This contribution will summarize the most important results obtained using different experimental probes, define the challenges to gain a deeper understanding of the excitations, and discuss the newest experimental developments.
We analysed our experimental recent findings of the dipole response of the odd-mass stable nucleus 205Tl within the quasi-particle phonon model. Using the phonon basis constructed for the neighbouring 204Hg and wave function configurations for 205Tl consisting of a mixture of quasiparticle ⊗ N-phonon configurations (N=0,1,2), only one group of fragmented dipole excited states has been reproduced at 5.5 MeV in comparison to the experimental distribution which shows a second group at about 5 MeV. The computed dipole transition strengths are mainly of E1 character which could be associated to the pygmy dipole resonance.
We present a nucleosynthesis sensitivity study for the γ-process in a Supernova type II model within the NuGrid research platform. The simulations aimed at identifying the relevant local production and destruction rates for the p-nuclei of molybdenum and at determining the sensitivity of the final abundances to these rates. We show that local destruction rates strongly determine the abundance of 92Mo and 94Mo, and quantify the impact.
The p nucleus 92Mo is believed to be mainly produced through photodisintegration reactions in type II supernovae. However, this production scenario cannot solely account for the observed solar relative isotopic abundance of 92Mo. Additional production scenarios have been suggested to explain this discrepancy. One of these scenarios could be the production of 92Mo in type Ia supernovae via a chain of proton-capture reactions. To verify this scenario, an accurate knowledge of the involved reaction rates is important. We measured the cross section of 90Zr(p,γ) reaction using an enriched 90Zr target by means of in-beam γ-ray spectroscopy in the energy range between 3.6MeV and 5.1MeV. Since the reactions 90Zr(p,γ) and 91Zr(p,n) produce the same nucleus, the contributions of both reactions have to be disentangled. This procedure is explained in this contribution in detail.
The complementary (γ, γ′) and (α, α′γ) reactions were used to study the isospin properties of low-lying E1 excitations in the doubly-magic nucleus 48Ca. In contrast to heavier nuclei, a state-to-state change in isospin character was revealed in 48Ca and a dominant isoscalar excitation was found which is interpreted as an isoscalar oscillation. Recently, protons at 80 MeV were used as an additional hadronic probe in a p-γ coincidence experiment on 140Ce for the first time. Results of the experiments on 48Ca and first results of the 140Ce will be presented in this contribution.
Formation of hypermatter and hypernuclei within transport models in relativistic ion collisions
(2015)
Within a combined approach we investigate the main features of the production of hyper-fragments in relativistic heavy-ion collisions. The formation of hyperons is modeled within the UrQMD and HSD transport codes. To describe the hyperon capture by nucleons and nuclear residues a coalescence of baryons (CB) model was developed. We demonstrate that the origin of hypernuclei of various masses can be explained by typical baryon interactions, and that it is similar to processes leading to the production of conventional nuclei. At high beam energies we predict a saturation of the yields of all hyper-fragments, therefore, this kind of reactions can be studied with high yields even at the accelerators of moderate relativistic energies.
We compute potentials of two static antiquarks in the presence of two quarks qq of finite mass using lattice QCD. In a second step we solve the Schrödinger equation, to determine, whether the resulting potentials are sufficiently attractive to host a bound state, which would indicate the existence of a stable qqb¯b¯ tetraquark. We find a bound state for qq=(ud−du)/2–√ with corresponding quantum numbers I(JP)=0(1+) and evidence against the existence of bound states with isospin I=1 or qq∈{cc,ss}.
In addition to the well-established quadrupole mixed-symmetry states, octupole and hexadecapole excitations with mixed-symmetry character have been recently proposed for the N = 52 isotones 92Zr and 94Mo. We performed two inelastic proton-scattering experiments to study this kind of excitations in the heaviest stable N = 52 isotone 96Ru. From the combined experimental data of both experiments absolute transition strengths were extracted.
We discuss the behavior of dynamically-generated charmed baryonic resonances in matter within a unitarized coupled-channel model consistent with heavy-quark spin symmetry. We analyze the implications for the formation of D-meson bound states in nuclei and the propagation of D mesons in heavy-ion collisions from RHIC to FAIR energies.
We compute the probability distribution P(N) of the net-baryon number at finite temperature and quark-chemical potential, μ, at a physical value of the pion mass in the quark-meson model within the functional renormalization group scheme. For μ/T < 1, the model exhibits the chiral crossover transition which belongs to the universality class of the O(4) spin system in three dimensions. We explore the influence of the chiral crossover transition on the properties of the net baryon number probability distribution, P(N). By considering ratios of P(N) to the Skellam function, with the same mean and variance, we unravel the characteristic features of the distribution that are related to O(4) criticality at the chiral crossover transition. We explore the corresponding ratios for data obtained at RHIC by the STAR Collaboration and discuss their implications. We also examine O(4) criticality in the context of binomial and negative-binomial distributions for the net proton number.
The dynamics of strange vector meson resonances (K* and K̄*) is investigated within the Parton-Hadron-String Dynamics (PHSD) transport approach. We present the time evolution of the production of K*− resonances from the QGP phase by quark fusion as well as from hadronic sources. We also give a brief overview of the modification of the K* through Kπ decay and K*N interaction in a hot and dense nuclear medium.
The transverse momentum (pT) spectrum and nuclear modification factor (RAA) of reconstructed jets in 0–10% and 10–30% central Pb–Pb collisions at √sNN = 2.76 TeV were measured. Jets were reconstructed using the anti-kT jet algorithm with a resolution parameter of R = 0.2 from charged and neutral particles, utilizing the ALICE tracking detectors and Electromagnetic Calorimeter (EMCal). The jet pT spectra are reported in the pseudorapidity interval of |ηjet| < 0.5 for 40 < pT, jet < 120 GeV/c in 0–10% and for 30 < pT, jet < 100 GeV/c in 10–30% collisions. Reconstructed jets were required to contain a leading charged particle with pT > 5 GeV/c to suppress jets constructed from the combinatorial background in Pb–Pb collisions. The leading charged particle requirement applied to jet spectra both in pp and Pb–Pb collisions had a negligible effect on the RAA. The nuclear modification factor RAA was found to be 0.28 ± 0.04 in 0–10% and 0.35 ± 0.04 in 10–30% collisions, independent of pT, jet within the uncertainties of the measurement. The observed suppression is in fair agreement with expectations from two model calculations with different approaches to jet quenching.
We have performed the first measurement of the coherent ψ(2S) photo production cross section in ultraperipheral Pb–Pb collisions at the LHC. This charmonium excited state is reconstructed via the ψ(2S) → l +l − and ψ(2S) → J/ψπ+π− decays, where the J/ψ decays into two leptons. The analysis is based on an event sample corresponding to an integrated luminosity of about 22 μb−1. The cross section for coherent ψ(2S) production in the rapidity interval −0.9 < y < 0.9 is dσcoh ψ(2S)/dy = 0.83±0.19 stat+syst mb. The ψ(2S) to J/ψ coherent cross section ratio is 0.34+0.08 −0.07(stat + syst). The obtained results are compared to predictions from theoretical models.
Measurement of electrons from heavy-flavour hadron decays in p–Pb collisions at √sNN = 5.02 TeV
(2015)
The production of electrons from heavy-flavour hadron decays was measured as a function of transverse momentum (pT) in minimum-bias p–Pb collisions at √sNN = 5.02 TeV using the ALICE detector at the LHC. The measurement covers the pT interval 0.5 < pT < 12 GeV/c and the rapidity range −1.065 < ycms < 0.135 in the centre-of-mass reference frame. The contribution of electrons from background sources was subtracted using an invariant mass approach. The nuclear modification factor RpPb was calculated by comparing the pT-differential invariant cross section in p–Pb collisions to a pp reference at the same centre-of-mass energy, which was obtained by interpolating measurements at √s = 2.76 TeV and √s = 7 TeV. The RpPb is consistent with unity within uncertainties of about 25%, which become larger for pT below 1 GeV/c. The measurement shows that heavy-flavour production is consistent with binary scaling, so that a suppression in the high-pT yield in Pb–Pb collisions has to be attributed to effects induced by the hot medium produced in the final state. The data in p–Pb collisions are described by recent model calculations that include cold nuclear matter effects.
A measurement of dijet correlations in p–Pb collisions at √sNN = 5.02 TeV with the ALICE detector is presented. Jets are reconstructed from charged particles measured in the central tracking detectors and neutral energy deposited in the electromagnetic calorimeter. The transverse momentum of the full jet (clustered from charged and neutral constituents) and charged jet (clustered from charged particles only) is corrected event-by-event for the contribution of the underlying event, while corrections for underlying event fluctuations and finite detector resolution are applied on an inclusive basis. A projection of the dijet transverse momentum, kTy = pch+ne T,jet sin(ϕdijet) with ϕdijet the azimuthal angle between a full and charged jet and pch+ne T,jet the transverse momentum of the full jet, is used to study nuclear matter effects in p–Pb collisions. This observable is sensitive to the acoplanarity of dijet production and its potential modification in p–Pb collisions with respect to pp collisions. Measurements of the dijet kTy as a function of the transverse momentum of the full and recoil charged jet, and the event multiplicity are presented. No significant modification of kTy due to nuclear matter effects in p–Pb collisions with respect to the event multiplicity or a PYTHIA8 reference is observed.
Atomistic molecular dynamics approach for channeling of charged particles in oriented crystals
(2015)
Der Gitterführungseffekt ist der Prozess der Ausbreitung von geladenen Teilchen entlang der Ebenen oder Achsen von kristallinen Materialien. Seit den 1960er Jahren ist dieser Effekt weitgehend theoretisch und experimentell untersucht worden. Dieser Effekt wurde für die Manipulation von Hochenergiestrahlen, die Hochpräzisionsstruktur- und -fehleranalyse von kristallinen Medien und die Herstellung von hochenergetischer Strahlung angewendet. Zur Abstimmung der Parameter der Gitterführung und Gitterführungsstrahlung wurde dieser Prozess für den Fall von künstlich nanostrukturierten Materialien, wie gebogenen Kristallen, Nanoröhren und Fullerit, angenommen. In den letzten Jahren wurde das Konzept des kristallinen Undulators formuliert und getestet, das besondere Eigenschaften der Strahlung aufgrund der Gitterführung von Projektilen in regelmäßig gebogenen Kristallen vorhersagt.
In dieser Arbeit werden die Prozesse der Gitterführung von Sub- und Multi-GeV-Elektronen und -Positronen durch den atomistischen Molekulardynamik-Ansatz untersucht. Die Ergebnisse dieser Studien wurden in einer Reihe von Artikeln während meiner Promotion in Frankfurt vorgestellt. Dieser Ansatz ermöglicht die Simulation komplexer Fälle von Gitterführung in geraden, gebogenen und periodisch gebogenen Kristallen aus reinen kristallinen Materialien und von gemischten Materialien wie Si-Ge-Kristallen, in mehrschichtigen und nanostrukturierten kristallinen Systemen. Die Arbeit beschreibt die Methode der Simulationen, stellt Ergebnisse von Simulationen für verschiedene Fälle vor und vergleicht die Ergebnisse von Simulationen mit aktuellen experimentellen Daten. Die Ergebnisse werden mit Schätzungen der dechanneling-Länge verglichen, dem Anteil der gittergeführten Projektile, der Winkelverteilung der ausgehenden Projektile und des Strahlungsspektrums.
We present an angular thin-lens formula giving the angle of refraction β for arbitrary values of the angle of incidence α. With this formula, we find analytical results for the focal length f of a thin-lens system. The number of lenses n and their focal lengths f1,f2,…,fn are abitrary, as are the mutual distances D12,…,D(n−1)n between the lenses. All these results are exact, i.e. not restricted to small or even paraxial angles. In the literature, the 2-lens and 3-lens versions (the last one without proof or derivation) are known [1]. We present the general result for n lenses and for (the positions of) its principal planes.
A detailed study of pseudorapidity densities and multiplicity distributions of primary charged particles produced in proton-proton collisions, at s√= 0.9, 2.36, 2.76, 7 and 8 TeV, in the pseudorapidity range |η|<2, was carried out using the ALICE detector. Measurements were obtained for three event classes: inelastic, non-single diffractive and events with at least one charged particle in the pseudorapidity interval |η|<1. The use of an improved track-counting algorithm combined with ALICE's measurements of diffractive processes allows a higher precision compared to our previous publications. A KNO scaling study was performed in the pseudorapidity intervals |η|< 0.5, 1.0 and 1.5. The data are compared to other experimental results and to models as implemented in Monte Carlo event generators PHOJET and recent tunes of PYTHIA6, PYTHIA8 and EPOS.
The measurement of the mass differences for systems bound by the strong force has reached a very high precision with protons and anti-protons1,2. The extension of such measurement from (anti-)baryons to (anti-)nuclei allows one to probe any difference in the interactions between nucleons and anti-nucleons encoded in the (anti-)nuclei masses. This force is a remnant of the underlying strong interaction among quarks and gluons and can be described by effective theories3, but cannot yet be directly derived from quantum chromodynamics. Here we report a measurement of the difference between the ratios of the mass and charge of deuterons (d) and anti-deuterons (), and 3He and nuclei carried out with the ALICE (A Large Ion Collider Experiment)4 detector in Pb–Pb collisions at a centre-of-mass energy per nucleon pair of 2.76 TeV. Our direct measurement of the mass-over-charge differences confirms CPT invariance to an unprecedented precision in the sector of light nuclei5,6. This fundamental symmetry of nature, which exchanges particles with anti-particles, implies that all physics laws are the same under the simultaneous reversal of charge(s) (charge conjugation C), reflection of spatial coordinates (parity transformation P) and time inversion (T).
Controlling magnetic properties on the nanometer-scale is essential for basic research in micro-magnetism and spin-dependent transport, as well as for various applications such as magnetic recording, imaging and sensing. This has been accomplished to a very high degree by means of layered heterostructures in the vertical dimension. Here we present a complementary approach that allows for a controlled tuning of the magnetic properties of Co/Pt heterostructures on the lateral mesoscale. By means of in situ post-processing of Pt- and Co-based nano-stripes prepared by focused electron beam induced deposition (FEBID) we are able to locally tune their coercive field and remanent magnetization. Whereas single Co-FEBID nano-stripes show no hysteresis, we find hard-magnetic behavior for post-processed Co/Pt nano-stripes with coercive fields up to 850 Oe. We attribute the observed effects to the locally controlled formation of the CoPt L10 phase, whose presence has been revealed by transmission electron microscopy.
We report on the production of inclusive Υ (1S) and Υ (2S) in p–Pb collisions at √sNN = 5.02 TeV at the LHC. The measurement is performed with the ALICE detector at backward (−4.46 < ycms < −2.96) and forward (2.03 .< ycms < 3.53) rapidity down to zero transverse momentum. The production cross sections of the Υ (1S) and Υ (2S) are presented, as well as the nuclear modification factor and the ratio of the forward to backward yields of Υ (1S). A suppression of the inclusive Υ (1S) yield in p–Pb collisions with respect to the yield from pp collisions scaled by the number of binary nucleon–nucleon collisions is observed at forward rapidity but not at backward rapidity. The results are compared to theoretical model calculations including nuclear shadowing or partonic energy loss effect.
Charged jet production cross sections in p–Pb collisions at √sNN=5.02 TeV measured with the ALICE detector at the LHC are presented. Using the anti-kT algorithm, jets have been reconstructed in the central rapidity region from charged particles with resolution parameters R=0.2 and R=0.4. The reconstructed jets have been corrected for detector effects and the underlying event background. To calculate the nuclear modification factor, RpPb, of charged jets in p–Pb collisions, a pp reference was constructed by scaling previously measured charged jet spectra at s=7 TeV. In the transverse momentum range 20≤pT,chjet≤120 GeV/c, RpPb is found to be consistent with unity, indicating the absence of strong nuclear matter effects on jet production. Major modifications to the radial jet structure are probed via the ratio of jet production cross sections reconstructed with the two different resolution parameters. This ratio is found to be similar to the measurement in pp collisions at √s=7 TeV and to the expectations from PYTHIA pp simulations and NLO pQCD calculations at √sNN=5.02 TeV.
We have performed the first measurement of the coherent ψ(2S) photo-production cross section in ultra-peripheral PbPb collisions at the LHC. This charmonium excited state is reconstructed via the ψ(2S)→l+l− and ψ(2S)→J/ψπ+π− decays, where the J/ψ decays into two leptons. The analysis is based on an event sample corresponding to an integrated luminosity of about 22 μb−1. The cross section for coherent ψ(2S) production in the rapidity interval −0.9<y<0.9 is dσψ(2S)coh/dy=0.83±0.19(stat+syst) mb. The ψ(2S) to J/ψ coherent cross section ratio is 0.34−0.07+0.08(stat+syst). The obtained results are compared to predictions from theoretical models.
The elliptic flow, v2, of muons from heavy-flavour hadron decays at forward rapidity (2.5<y<4) is measured in Pb–Pb collisions at √sNN=2.76 TeV with the ALICE detector at the LHC. The scalar product, two- and four-particle Q cumulants and Lee–Yang zeros methods are used. The dependence of the v2 of muons from heavy-flavour hadron decays on the collision centrality, in the range 0–40%, and on transverse momentum, pT, is studied in the interval 3<pT<10 GeV/c. A positive v2 is observed with the scalar product and two-particle Q cumulants in semi-central collisions (10–20% and 20–40% centrality classes) for the pT interval from 3 to about 5 GeV/c with a significance larger than 3σ, based on the combination of statistical and systematic uncertainties. The v2 magnitude tends to decrease towards more central collisions and with increasing pT. It becomes compatible with zero in the interval 6<pT<10 GeV/c. The results are compared to models describing the interaction of heavy quarks and open heavy-flavour hadrons with the high-density medium formed in high-energy heavy-ion collisions.