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This work deals with the determination of the scale parameter ΛM̄S̄ from lattice QCD and perturbation theory results of the static quark-antiquark potential for nf = 2. The investigation is done in momentum space. Lattice methods as well as perturbation theory calculations are introduced. Another part of this work concerns the calculation of the quark-antiquark potential from gauge link configurations for nf = 2 + 1 + 1.
The quark gluon plasma produced in heavy ion collisions behaves like an almost ideal fluid described by viscous hydrodynamics with a number of transport coefficients. The second order coefficient κ is related to a Euclidean correlator of the energy-momentum tensor at vanishing frequency and low momentum. This allows for a lattice determination without maximum entropy methods or modelling, but the required lattice sizes represent a formidable challenge. We calculate κ in leading order lattice perturbation theory and simulations on 1203 × 6, 8 lattices with a < 0.1 fm. In the temperature range 2Tc − 10Tc we find κ = 0.36(15)T2. The error covers both a suitably rescaled AdS/CFT prediction as well as, remarkably, the result of leading order perturbation theory. This suggests that appropriate noise reduction methods on the lattice and NLO perturbative calculations could provide an accurate QCD prediction in the near future.
The Facility for Antiproton and Ion Research (FAIR), under construction at Darmstadt will provide intense relativistic beams of exotic nuclei at its Superconducting-FRagment Separator. High-resolution in-beam γ-ray spectroscopy will be performed in the HISPEC experiment, using the European Advanced GAmma-ray Tracking Array (AGATA). The PreSPEC-AGATA campaign is the predecessor of HISPEC and runs from 2012 to 2014 at GSI Helmholtzzentrum für Schwerionenforschung GmbH. Up to19 AGATA modules were used at GSI's F Ragment Separator in 2012. We report on the status of the experiment including preliminary results from performance commissioning.
Many QCD based and phenomenological models predict changes of hadron properties in a strongly interacting environment. The results of these models differ significantly and the experimental determination of hadron properties in nuclear matter is essential. In this paper we present a review of selected physics results obtained at GSI Helmholtzzentrum für Schwerionenforschung GmbH by HADES (High-Acceptance Di-Electron Spectrometer). The e+e− pair emission measured for proton and heavy-ion induced collisions is reported together with results on strangeness production. The future HADES activities at the planned FAIR facility are also discussed.
The subatomic world is governed by the strong interactions of quarks and gluons, described by Quantum Chromodynamics (QCD). Quarks experience confinement into colour-less objects, i.e. they can not be observed as free particles. Under extreme conditions such as high temperature or high density, this constraint softens and a transition to a phase where quarks and gluons are quasi-free particles (Quark-Gluon-Plasma) can occur. This environment resembles the conditions prevailing during the early stages of the universe shortly after the Big Bang.
The phase diagram of QCD is under investigation in current and future collider experiments, for example at the Large Hadron Collider (LHC) or at the Facility for Antiproton and Ion Research (FAIR). Due to the strength of the strong interactions in the energy regime of interest, analytic methods can not be applied rigorously. The only tool to study QCD from first principles is given by simulations of its discretised version, Lattice QCD (LQCD).
These simulations are in the high-performance computing area, hence, the numerical aspects of LQCD are a vital part in this field of research. In recent years, Graphic Processing Units (GPUs) have been incorporated in these simulations as they are a standard tool for general purpose calculations today.
In the course of this thesis, the LQCD application cl2qcd has been developed, which allows for simulations on GPUs as well as on traditional CPUs, as it is based on OpenCL. cl2qcd constitutes the first application for Wilson type fermions in OpenCL.
It provides excellent performance and has been applied in physics studies presented in this thesis. The investigation of the QCD phase diagram is hampered by the notorious sign-problem, which restricts current simulation algorithms to small values of the chemical potential.
Theoretically, studying unphysical parameter ranges allows for constraints on the phase diagram. Of utmost importance is the clarification of the order of the finite temperature transition in the Nf=2 chiral limit at zero chemical potential. It is not known if it is of first or second order. To this end, simulations utilising Twisted Mass Wilson fermions aiming at the chiral limit are presented in this thesis.
Another possibility is the investigation of QCD at purely imaginary chemical potential. In this region, QCD is known to posses a rich phase structure, which can be used to constrain the phase diagram of QCD at real chemical potential and to clarify the nature of the Nf=2 chiral limit. This phase structure is studied within this thesis, in particular the nature of the Roberge-Weiss endpoint is mapped out using Wilson fermions.
In der vorliegenden Arbeit werden Stabilitätstests an einer Vieldrahtproportionalkammer nach ALICE-Geometrie vorgestellt. Wegen elektrischer Instabilitäten, das heißt dem Abschalten der Hochspannungsversorgung einzelner Kammern aufgrund von Entladungen an der Ausleseebene, wurde die ALICE-TPC bisher mit zwei unterschiedlichen Gasmischungen betrieben. Es wurden die Gasmischungen Ne-CO2 (90-10) und Ne-CO2-N2 (90-10-5) verwendet.
In dieser Arbeit soll nun mit systematischen Stabilitätstests mit einer α- und einer γ-Quelle am Testaufbau am IKF untersucht werden, ob eine Beimischung von Stickstoff zur Gasmischung Ne-CO2 wirklich positive Auswirkungen auf die elektrische Stabilität der Vieldrahtproportionalkammern der ALICE-TPC hat. Messungen mit der Gasmischung Ar-CO2 (90-10) dienen dabei als Referenzmessungen.
Zunächst wurden vorbereitende Messungen zum bessseren Verständnis des Einflusses der Ausleseelektronik auf die Padsignale am Testaufbau durchgeführt. Die Untersuchung der von einem Pulser induzierten Signale zeigt, dass keine Korrektur der Nullverschiebung nötig ist. Auÿerdem konnten durch diese Messung die Verstärkungsfaktoren des verwendeten Hauptverstärkers ermittelt werden. Ein weiterer wichtiger Faktor für Stabilitätstests ist die Genauigkeit des Mischungsverhältnisses des Gases. Um eine hohe Genauigkeit zu gewährleisten, wurde der Gasfliss der verschiedenen Kanäle des zur Herstellung der Gasmischung genutzten Gasmischers überprüft und so die Bereiche für den Gasfluss gefunden, in denen sich das Mischungsverhältnis nicht ändert.
Eine gute Auflösung kann mit Vieldrahtproportionalkammern erreicht werden, wenn die Kammern auch bei einem möglichst groÿen Gain noch stabil betrieben werden können. Um den Gain aus Anodestrommessungen bestimmen zu können, wurden die Primärströme für die α- und die γ-Quelle ermittelt.
Frühere Messungen mit einer γ-Quelle, aufgrund derer Stickstoff als Beimischung in den Fokus rückte, ließen vermuten, dass sich durch die Beimischung von Stickstoff die Stabilität der Auslesekammern verbessern lassen würde. Die durchgeführten Messungen mit der γ-Quellen sollten diese Aussage nun überprüfen. Sie können die früheren Ergebnisse jedoch nicht bestätigen, sondern zeigen, dass die Gasmischung Ne-CO2-N2 (90-10-5) im Gegensatz zur Gasmischung Ne-CO2 (90-10) bei Bestrahlung mit der γ-Quelle zu instabileren Bedingungen für die Auslesekammer führt.
Zum Erzeugen der Anodensignale bei Stabilitätstests wurden erstmals geladene Teilchen aus einer α-Quelle verwendet. Im Gegensatz zur Messung mit der γ-Quelle kann die Auslesekammer bei der Beimischung von Stickstoff zu Ne-CO2 bis zu einem um 25% höheren Gain stabil betrieben werden als bei der Gasmischung Ne-CO2.
Aufgrund des je nach verwendeter Quelle unterschiedlichen Effekts auf die Stabilität der Auslesekammer lässt sich nicht mit absoluter Sicherheit sagen, ob eine Beimischung von Stickstoff die gewünschten Auswirkungen hat. Allerdings werden die Spuren in der ALICE-TPC durch geladene Teilchen hervorgerufen, sodass die Messungen mit der α-Quelle den experimentellen Bedingungen bei ALICE näher kommen als die Messungen mit der γ-Quelle und deshalb die Gasmischung Ne-CO2-N2 (90-10-5) zu bevorzugen ist.
Within the nucleosynthetic processes of the slow neutron-capture reaction network (called the s process) the so called branching points, unstable isotopes where different nuclear reactions are competing, are important to understand . For modeling and calculating the nucleosynthesis and compare the resulting abundances to the observed ones, it is indispensable to know the branching ratios as well as the corresponding cross sections.
A great challenge in measuring those rates in experiments may be the radioactivity of the isotopes involved, which can make it nearly impossible to manufacture the needed targets. In addition, in stellar environments the excited states of isotopes can be in equilibrium with the ground state, affecting the half-lives and the branching ratios significantly. The isotope 152Eu is such a branching point, with neutron captures and β-decays competing. Those challenges were approached in the s405 experiment performed at the GSI Helmholtzzentrum für Schwerionenforschung GmbH: the challenge the challenge of the radioactivity can be approached by experiments carried out in inverse kinematics with radioactive beams, solving the problem of unstable targets. Also a reversed reaction was used to access the excited states of the studied isotope. The performed 152Sm(p,n)152Eu is a pioneering attempt to use those methods on heavy ions. The (p,n) reaction was used as a substitute for electron capture, the focus lies on reactions with low-momentum transfers, resulting in the emission of low-energy neutrons. The new developed low-energy detector array LENA was put to test for the fist time in the s405 experiment.
In self-organized critical (SOC) systems avalanche size distributions follow power-laws. Power-laws have also been observed for neural activity, and so it has been proposed that SOC underlies brain organization as well. Surprisingly, for spiking activity in vivo, evidence for SOC is still lacking. Therefore, we analyzed highly parallel spike recordings from awake rats and monkeys, anesthetized cats, and also local field potentials from humans. We compared these to spiking activity from two established critical models: the Bak-Tang-Wiesenfeld model, and a stochastic branching model. We found fundamental differences between the neural and the model activity. These differences could be overcome for both models through a combination of three modifications: (1) subsampling, (2) increasing the input to the model (this way eliminating the separation of time scales, which is fundamental to SOC and its avalanche definition), and (3) making the model slightly sub-critical. The match between the neural activity and the modified models held not only for the classical avalanche size distributions and estimated branching parameters, but also for two novel measures (mean avalanche size, and frequency of single spikes), and for the dependence of all these measures on the temporal bin size. Our results suggest that neural activity in vivo shows a mélange of avalanches, and not temporally separated ones, and that their global activity propagation can be approximated by the principle that one spike on average triggers a little less than one spike in the next step. This implies that neural activity does not reflect a SOC state but a slightly sub-critical regime without a separation of time scales. Potential advantages of this regime may be faster information processing, and a safety margin from super-criticality, which has been linked to epilepsy.
Single-pion production in proton-proton collisions at 1.25 GeV: measurements by HADES and a PWA
(2014)
We report on the single-pion production in proton-proton collisions at a kinetic energy of 1.25 GeV based on data measured with HADES. Exclusive channels npπ+ and ppπ0 were studied simultaneously. The parametrization of production cross sections of the one-pion final states by means of the resonance model has been obtained. Independently, the extraction of the leading partial waves in the data were analyzed within the framework of the partial wave analysis (PWA). Contributions for the production of ∆(1232) and N(1440) intermediate states have been deduced.
We study vacuum masses of charmonia and the charm-quark diffusion coefficient in the quark-gluon plasma based on the spectral representation for meson correlators. To calculate the correlators, we solve the quark gap equation and the inhomogeneous Bethe–Salpeter equation in the rainbow-ladder approximation. It is found that the ground-state masses of charmonia in the pseudoscalar, scalar, and vector channels can be well described. For 1.5Tc<T<3.0Tc, the value of the diffusion coefficient D is comparable with that obtained by lattice QCD and experiments: 3.4<2πTD<5.9. Relating the diffusion coefficient with the ratio of shear viscosity to entropy density η/s of the quark-gluon plasma, we obtain values in the range 0.09<η/s<0.16.
The colour-singlet axial-vector vertex plays a pivotal role in understanding dynamical chiral symmetry breaking and numerous hadronic weak interactions, yet scant model-independent information is available. We therefore use longitudinal and transverse Ward–Green–Takahashi (WGT) identities, together with kinematic constraints, in order to ameliorate this situation and expose novel features of the axial vertex: amongst them, Ward-like identities for elements in the transverse piece of the vertex, which complement and shed new light on identities determined previously for components in its longitudinal part. Such algebraic results are verified via solutions of the Bethe–Salpeter equation for the axial vertex obtained using two materially different kernels for the relevant Dyson–Schwinger equations. The solutions also provide insights that suggest a practical Ansatz for the axial-vector vertex.
In this work the baryon number and strange susceptibility of second and fourth order are presented. The results at zero baryon-chemical potential are obtained using a well tested chiral effective model including all known hadron degrees of freedom and additionally implementing quarks and gluons in a PNJL-like approach. Quark and baryon number susceptibilities are sensitive to the fundamental degrees of freedom in the model and signal the shift from massive hadrons to light quarks at the deconfinement transition by a sharp rise at the critical temperature. Furthermore, all susceptibilities are found to be largely suppressed by repulsive vector field interactions of the particles. In the hadronic sector vector repulsion of baryon resonances restrains fluctuations to a large amount and in the quark sector above Tc even small vector field interactions of quarks quench all fluctuations unreasonably strong. For this reason, vector field interactions for quarks have to vanish in the deconfinement limit.
Electromagnetic calorimeter (ECAL) is being developed to complement dilepton spectrometer HADES. ECAL will enable the HADES@FAIR experiment to measure data on neutral meson production in heavy ion collisions at the energy range of 2-10 AGeV on the beam of future accelerator SIS100@FAIR. We will report results of the last beam test with quasi-monoenergetic photons carried out in MAMI facility at Johannes Gutenberg Universität Mainz.
During the 2011 Pb-Pb run, dedicated triggers were used by the ALICE Collaboration to enrich ultra-peripheral collisions (UPC) to measure the J/ψ production cross section and its rapidity dependence at a centre of mass energy of 2.76 TeV per nucleon pair. In this article, the ongoing studies on J/ψ photoproduction in UPC events are presented.
In dieser Arbeit wurden eine Reihe neuer organischer Ladungstransfer (CT)-Verbindungen in Form von Einkristallen und Dünnschichten synthetisiert und grundlegend charakterisiert.
Für die Synthese kamen verschiedene bekannte und bislang unbekannte Donor- und Akzeptormoleküle zum Einsatz. Während einige bekannte Materialien wie TTF und TCNQ kommerziell erworben werden konnten, bestand im Rahmen der Kollaboration mit dem MPI für Polymerforschung zudem Zugang zu mehreren neuen Molekülen wie TMP und HATCN, die besonders mit Blick auf die Möglichkeit zur Dünnschichtpräparation ausgewählt wurden. Auf dieser Grundlage konnten zum einen mittels verschiedener Varianten der Lösungszüchtung erfolgreich neue CT-Komplexe als Einkristalle gezüchtet werden. Dabei kamen mehrere unterschiedliche Lösungsmittel zur Anwendung, die z.T. auch die gezielte Synthese bestimmter Kristallphasen erlaubten. Zum zweiten gelang die Präparation eines Teils dieser Systeme als Dünnschicht über die Methode der Molekularstrahldeposition mit verschiedenen Isolatoren wie SiO2 als Substratmaterial. Hierbei wurde zum Teil zuvor gezüchtetes Material eingesetzt, zum Teil entstand die neue Verbindung erst über diesen Prozess.
Die Proben der neuen Verbindungen wurden zunächst mittels verschiedener Methoden morphologisch und kristallographisch untersucht. Die Kristallzüchtung lieferte in vielen Fällen eine gute Kristallqualität, die sowohl für die Strukturbestimmung als auch die späteren elektrischen Messungen ausreichend war. Die Kristallstruktur konnte für mehrere neue Systeme ermittelt werden und ergab in allen Fällen eine Anordnung mit gemischten Donor-Akzeptor-Stapeln. Für die präparierten Dünnschichten konnte bei einem Großteil der Verbindungen gemäß der Untersuchungen mittels Röntgendiffraktion die gleiche(n) kristalline(n) Struktur(en) wie in den Einkristallen festgestellt werden. Es ließen sich zwei wesentliche Beobachtungen machen: a) Die Morphologie der Schichten besitzt eine ausgeprägte Tendenz zu rauem Inselwachstum; b) In praktisch allen Fällen bilden sich innerhalb der Schicht mindestens zwei stabile CT-Phasen parallel. Beide Verhaltensweisen traten nahezu unabhängig von Substrat, dessen Temperatur, Ausgangszustand (Material vorreagiert oder nicht) und Depositionstemperatur auf.
Die elektronischen Transportmessungen bestanden primär aus temperaturabhängigen Messungen
der elektrischen Leitfähigkeit, während Feldeffektmessungen mit organischen Transistorstrukturen
lediglich den Charakter einer Grundsteinlegung für tiefergehende Untersuchungen mit optimierten Schichten hatten. Die Kryostat-Messungen bis hinunter zu rund 1,5 Kelvin zeigten bei keiner der Verbindungen ein klares Anzeichen für einen Phasenübergang. Die absoluten Werte der Leitfähigkeit bei Raumtemperatur passten qualitativ zu der typischen Erwartung an ein gemischt gestapeltes CT-System, nämlich ein halbleitendes oder isolierendes Verhalten, was durch das arrhenius-artige Temperaturverhalten auch bestätigt wurde.
Dielektrische Messungen mit Kondensatorstrukturen wurden für die neuen Systeme TMP-TCNQ
und ET-DTF in der Dünnschichtform vorgenommen. Im Vordergrund stand dabei die Suche nach neuen Verbindungen, die einen neutral-ionischen Phasenübergang zeigen, der sich im Idealfall durch eine starke, peakförmige Anomalie in der Temperaturabhängigkeit der Dielektrizitätskonstanten bemerkbar machen sollte. Während sich in TMP-TCNQ keinerlei Hinweise auf einen Übergang zeigten, lieferte ET-DTF einen Verlauf, der einen strukturellen
Übergang andeutet, dessen Identität aber noch ungeklärt ist.
Zur Ergänzung wurden mit Hilfe mehrerer Kooperationspartner weitere Untersuchungen zwecks
Charakterisierung der neuen CT-Systeme vorgenommen. Die Bestimmung des Ladungstransfergrades δ mittels IR-Absorption lieferte im Wesentlichen eine Bestätigung der Beobachtung, dass die inspizierten Verbindungen gemischt gestapelte Systeme halbleitender oder
isolierender Natur sind, da δ nur geringe Werte von max. ca. 0,2 zeigte, die für solche Systeme
typisch sind. In ähnlicher Weise bestätigten Bandstruktur-Rechnungen dieses Verhalten, da die Bänder allgemein nur eine eher geringe elektronische Bandbreite zeigten. Zudem ergab sich für die trikline Phase von ET-DTF und das System TMP-F4TCNQ eine deutliche Anisotropie hinsichtlich der Dispersion, da diese erheblich verstärkt entlang der zur Stapelachse des Systems korrespondierenden Richtung des k-Raumes auftritt, also (im Einklang mit den Leitfähigkeitsdaten) 1D-Charakter besitzt. Ein weiterer Beitrag zur Suche nach neuen NI-Verbindungen entstand durch Messung der charakteristischen CT-Absorption einiger Systeme im optischen bzw. IR-Spektrum. In Kombination mit den Werten für Ionisierungsenergie und Elektronenaffinität konnte eine Einordnung in das von Torrance et al. entwickelte, sog. V-Diagramm vorgenommen werden, mit dessen Hilfe sich aussichtsreiche Molekülkombinationen für ein neues NI-System eruieren ließen.
In the search for novel organic charge transfer salts with variable degrees of charge transfer we have studied the effects of two modifications of the recently synthesized donor–acceptor system [tetramethoxypyrene (TMP)]–[tetracyanoquinodimethane (TCNQ)]. One is of chemical nature by substituting the acceptor TCNQ molecules by F4TCNQ molecules. The second consists in simulating the application of uniaxial pressure along the stacking axis of the system. In order to test the chemical substitution, we have grown single crystals of the TMP–F4TCNQ complex and analyzed its electronic structure via electronic transport measurements, ab initio density functional theory (DFT) calculations and UV/VIS/IR absorption spectroscopy. This system shows an almost ideal geometrical overlap of nearly planar molecules stacked alternately (mixed stack) and this arrangement is echoed by a semiconductor-like transport behavior with an increased conductivity along the stacking direction. This is in contrast to TMP–TCNQ which shows a less pronounced anisotropy and a smaller conductivity response. Our band structure calculations confirm the one-dimensional behavior of TMP–F4TCNQ with pronounced dispersion only along the stacking axis. Infrared measurements illustrating the C[triple bond, length as m-dash]N vibration frequency shift in F4TCNQ suggest however no improvement in the degree of charge transfer in TMP–F4TCNQ with respect to TMP–TCNQ. In both complexes about 0.1e is transferred from TMP to the acceptor. Concerning the pressure effect, our DFT calculations on the designed TMP–TCNQ and TMP–F4TCNQ structures under different pressure conditions show that application of uniaxial pressure along the stacking axis of TMP–TCNQ may be the route to follow in order to obtain a much more pronounced charge transfer.
The phase diagram of the square lattice bilayer Hubbard model: a variational Monte Carlo study
(2014)
We investigate the phase diagram of the square lattice bilayer Hubbard model at half-filling with the variational Monte Carlo method for both the magnetic and the paramagnetic case as a function of the interlayer hopping and on-site Coulomb repulsion U. With this study we resolve some discrepancies in previous calculations based on the dynamical mean-field theory, and we are able to determine the nature of the phase transitions between metal, Mott insulator and band insulator. In the magnetic case we find only two phases: an antiferromagnetic Mott insulator at small for any value of U and a band insulator at large . At large U values we approach the Heisenberg limit. The paramagnetic phase diagram shows at small a metal to Mott insulator transition at moderate U values and a Mott to band insulator transition at larger U values. We also observe a re-entrant Mott insulator to metal transition and metal to band insulator transition for increasing in the range of . Finally, we discuss the phase diagrams obtained in relation to findings from previous studies based on different many-body approaches.
The traffic AAA-ATPase PilF is essential for pilus biogenesis and natural transformation of Thermus thermophilus HB27. Recently, we showed that PilF forms hexameric complexes containing six zinc atoms coordinated by conserved tetracysteine motifs. Here we report that zinc binding is essential for complex stability. However, zinc binding is neither required for pilus biogenesis nor natural transformation. A number of the mutants did not exhibit any pili during growth at 64 °C but still were transformable. This leads to the conclusion that type 4 pili and the DNA translocator are distinct systems. At lower growth temperatures (55 °C) the zinc-depleted multiple cysteine mutants were hyperpiliated but defective in pilus-mediated twitching motility. This provides evidence that zinc binding is essential for the role of PilF in pilus dynamics. Moreover, we found that zinc binding is essential for complex stability but dispensable for ATPase activity. In contrast to many polymerization ATPases from mesophilic bacteria, ATP binding is not required for PilF complex formation; however, it significantly increases complex stability. These data suggest that zinc and ATP binding increase complex stability that is important for functionality of PilF under extreme environmental conditions.
We propose an effective theory of SU(3) gluonic matter where interactions between color-electric and color-magnetic gluons are constrained by the center and scale symmetries. Through matching to the dimensionally-reduced magnetic theories, the magnetic gluon condensate qualitatively changes its thermal behavior above the critical temperature. We argue its phenomenological consequences for the thermodynamics, in particular the dynamical breaking of scale invariance.
The so-called Pygmy Dipole Resonance, an additional structure of low-lying electric dipole strength, has attracted strong interest in the last years. Different experimental approaches have been used in the last decade in order to investigate this new interesting nuclear excitation mode. In this contribution an overview on the available experimental data is given.
In dieser Arbeit wurden die ersten Schritte unternommen um Elektronen aus den Zerfällen schwerer Quarks zu messen. Im Folgenden wird zunächst ein Überblick zum physikalische Hintergrund gegeben und der elliptische Fluss als Sonde zur Untersuchung des QGP motiviert. Anschließend werden der LHC und ALICE näher beleuchtet und die einzelnen Detektorsysteme, die für diese Analyse wichtig sind, vorgestellt. Im weiteren wird eine Methode zur Identifizierung von Elektronen vorgestellt und die Kontamination des Elektronensignals durch Hadronen bestimmt. Abschließend wird der elliptische Fluss eines von Hadronen bereinigten Inklusiv-Elektronen Spektrums bestimmt und ein Ausblick auf weitere Analyseschritte gegeben.
Tuning and optimization of the field distribution for 4-rod radio frequency quadrupole linacs
(2014)
In this thesis, the tuning process of the 4-rod Radio Frequency Quadrupole has been analyzed and a theory for the prediction of the tuning plate's influence on the longitudinal voltage distribution was developed together with RF design options for the optimization of the fringe fields.
The basic principles of the RFQ's particle dynamics and resonant behavior are introduced in the theory part of this thesis. All studies that are presented are based on the work on four RFQs of recent linac projects. These RFQs are described in one chapter. Here, the projects are introduced together with details about the RFQ parameters and performance. In the meantime two of these RFQs are in full operation at NSCL at MSU and FNAL. One is operating in the test phase of the MedAustron Cancer Therapy Center and the fourth one for LANL is about to be built. The longitudinal voltage distribution has been studied in detail with a focus on the influence of the RF design with tuning elements and parameters like the electrodes overlap or the distance between stems. The theory for simulation methods for the field flatness that were developed as part of this thesis, as well as its simulation with CST MWS have been analyzed and compared to measurements. The lumped circuit model has proven to predict results with an accuracy that can be used in the tuning process of 4-rod RFQs. Together with results from the tuning studies, the studies on the fringe fields of the 4-rod structure lead to a proposal for a 4-rod RFQ model with an improved field distribution in the transverse and longitudinal electric field.
In dieser Arbeit wird der Strahltransport in einer Niederenergietransportsektion (LEBT) untersucht. Die Untersuchungen werden für die Betriebsmodi der im Aufbau befindlichen Neutronenquelle FRANZ an der Frankfurter Goethe-Universität durchgeführt. Hierbei wird die Akzeptanz eines Choppersystems nach der ersten Sektion des Transportwegs sowie die Akzeptanz des auf die zweite Sektion folgenden RFQ betrachtet und bestmöglich erfüllt. Die Auswirkungen durch die Raumladungswirkung des Ionenstrahls werden berücksichtigt, ebenso die mögliche thermische Belastung durch Strahlverlust an den Komponenten entlang des Strahlwegs. Weiterhin wird der Einfluss eines nicht optimierten Einschusses in den RFQ und die sich daraus ergebenden Strahleigenschaften am Ende des RFQs untersucht.
Das Ziel dieser Bachelorarbeit war es, einen Überblick über die Größe der, durch Einbeziehung des Loop-Level-Diagrammes entstehenden, Korrekturen zu erhalten. Die Ergebnisse sollen eingrenzen, wann diese Korrekturen wichtig oder sogar dominant sind. Der Einfluss der Korrekturen lässt sich gut mit Hilfe von g0 und g00 einschätzen. So gilt für g0 gerade Γntl = 1.33 Γ, die Korrekturen sind also für die Berechnung wichtig jedoch nicht dominant. Für g00 beginnen die Korrekturen gerade dominant gegenüber den Berechnungen in erster Ordnung zu werden (es gilt hier Γntl = 2 Γ). Wie anhand von Tabelle 7.2 zu sehen werden die Korrekturen, abhängig von der Massenkonfiguration, ab etwa 1.6 − 2.2mS wichtig und ab etwa 2.2 − 3.4mS dominant. Für sehr kleine Massen mΦ liegt diese Grenze natürlich niedriger, es wurde jedoch gezeigt, dass die Korrekturen selbst für mΦ = 10−13mS erst ab etwa 0.65mS dominant sind. Praktisch dürften die Korrekturen daher nur sehr selten, wenn überhaupt für Werte von g < mS, eine nennenswerte Rolle spielen. Welchen Einfluss die Korrekturen bei realen Zerfallskanälen haben, sollte nun anhand der Zerfälle von f0(500), f0(980), f0(1370) und f0(1500) in Pionen gezeigt werden. Zusätzlich wurde für den Zerfall von f0(500) die Berechnung ein weiteres Mal mit endlichem (niedrigen) Cutoff durchgeführt, um dessen Auswirkungen auf die Ergebnisse zu betrachten. Dies ist dann wichtig, wenn die beobachteten Teilchen eine endliche, räumliche Ausdehnung haben (beispielsweise wenn wie hier Hadronenzerfälle betrachtet werden). Für f0(980) und f0(1500) stellen sich die Korrekturen, wie aufgrund der vorherigen Ergebnisse und des sehr kleinen Verhältnisses von Zerfallsbreite und Masse bereits erwartet, mit 1.22% beziehungsweise 0.032% als sehr gering heraus. Für f0(1370) ist das Verhältnis bereits deutlich größer, hier sind die Korrekturen mit 7.43% bereits im hohen einstelligen Prozentbereich und damit für genaue Rechnungen durchaus wichtig. Für f0(500) zeigt sich nun wiederum, dass die Korrekturen sehr groß sind, die Loop-Level-Kopplungskonstanten ist um 24.57% kleiner. Für diesen Zerfalll sollte also bereits bei einer Abschätzung das Loop-Level Diagramm einbezogen werden. Stellt man die Berechnung mit endlichem Cutoff an, so stellt sich heraus, dass sich die exakten Werte zwar durchaus verändern, die Änderungen sind jedoch nicht so groß dass die Ergebnisse drastisch abweichen. Die Kopplungskonstante wird bei dem angenommenen Cutoff Λ = 0.95 GeV um 6.47% größer. In allen Varitionen fallen die Korrekturen kleiner als 33% aus. Als letztes ist die Genauigkeit der hier erhaltenen Ergebnisse zu beurteilen. Theoretisch sollten die numerischen Berechnungen mit beliebiger Genauigkeit durchführbar sein. Bei den im Rahmen dieser Arbeit durchgeführten Berechnungen trat jedoch das Problem auf, dass die numerischen Berechnungen des Integrals für Winkel sehr nahe 0° beziehungsweise 180° chaotisch wurden. Die Winkelintegration wurde daher nur von −0.99999 bis 0.99999 durchgeführt. Da das Impulsintegral bei diesen Winkeln etwa von der Größe 0.1 − 2 ist, abhängig von der Massenkonfiguration, entstehen dadurch Fehler der Größenordnung 10−5. Die Ursache für diesen Fehler liegt vermutlich darin begründet, dass sich für diese Winkel jeweils der dritte Pol auf den ersten und der vierte Pol auf den zweiten Pol verschiebt. In diesem Fall entsteht zwar an gleicher Stelle im Zähler eine Nullstelle (schaut man sich P1, P2 und P3 an, so befinden sich an diesen Stellen auch nur einfache Pole), die numerische Berechnung kann dadurch allerdings problematisch werden. Im Rahmen dieser Arbeit wurde eine Genauigkeit von 4 Nachkommastellen allerdings als ausreichend betrachtet. Abschließend lässt sich sagen, dass die Korrekturen in (fast) allen betrachteten Fällen klein sind. In Einzelfällen können sie allerdings durchaus relevante Dimensionen erreichen, wie am f0(500) Zerfall zu sehen ist. In zukünftigen Arbeiten sollte dieses Thema also auch für Wechselwirkungen mit Ableitungen und nicht-skalare Teilchen aufgegriffen werden.
In dieser Arbeit wird der Strahltransport in einem CH-Driftröhrenbeschleuniger untersucht. Hierfür wurden numerische Simulationen zur elektromagnetischen Feldverteilung und dem strahldynamischen Einfluss der CH-Driftröhrenkavität durchgeführt. Sie fungiert als Prototyp für CH-Strukturen im Injektor des MYRRHA-Projekts, einem beschleunigergetriebenen System (ADS) zur Transmutation radioaktiven Abfalls. Zudem wird sie an der im Aufbau befindlichen Frankfurter Neutronenquelle am Stern-Gerlach-Zentrum (FRANZ) an der Goethe-Universität Frankfurt am Main experimentell mit Strahl getestet werden. FRANZ dient neben dem Einsatz als Experimentierfeld für neuartige Beschleuniger- und Strahldiagnostikkonzepte vor allem der Forschung im Bereich nuklearer Astrophysik.
Das Schwerionenkollisionen Programm der Beschleuniger RHIC und LHC gibt Hinweise auf einen neuen Zustand hadronischer Materie --- das Quark-Gluon Plasma. Dieses zeichnet sich durch eine zumindest partielle Aufhebung des confinements aus, welches besagt, dass keine freien Quarks beochtbar sind.
Aus einer Beschreibung der experimentellen Daten mit relativistischer Hydrodynamik folgen weitere Eigenschaften. So geht das in einer Schwerionenkollision erzeugte Quark-Gluon Plasma nach sehr kurzer Zeit, etwa 1 fm/c, in ein zumindest lokales thermisches Gleichgewicht über. Durch die Lorentzkontraktion der beiden Schwerionen erwartet man, dass der Zustand direkt nach der Kollision durch eine Impulsanisotropie in der transversal-longitudinalen Ebene bestimmt wird. Somit setzt das Erreichen eines thermischen Gleichgewichts zunächst eine Isotropisierung voraus. Bisherige Studien haben gezeigt, dass gluonische Moden bei dieser Isotropisierung durch Verursachung einer chromo-Weibel Instabilität eine entscheidende Rolle spielen.
Weiterhin verhält sich das Quark-Gluon Plasma wie eine fast perfekte Flüssigkeit. Eine Berücksichtigung dissipativer Terme in der hydrodynamischen Beschreibung erfordert das Hinzufügen weiterer Terme zu den entsprechenden Bewegungsgleichungen. Diese sind proportional zu Transportkoeffizienten, welche durch die zugrunde liegende mikroskopische Theorie festgelegt sind.
Diese Theorie ist Quantenchromodynamik. Sie beschreibt die starke Wechselwirkung der Quarks und Gluonen und ist ein fundamentaler Baustein des Standardmodells der Teilchenphysik. Da im Regelfall Prozesse der starken Wechselwirkung nichtperturbativ sind, beschreiben wir QCD unter Verwendung einer Gitterregularisierung. Diese beruht auf einer Diskretisierung der vierdimensionalen Euklidischen Raumzeit durch einen Hyperkubus mit periodischen Randbedingungen und ermöglicht ein Lösen der QCD mit numerischen Methoden. Allerdings ist die Anwendung der Gittereichtheorie auf Systeme im thermischen Gleichgewicht beschränkt und kann somit keine Prozesse beschreiben, die auf Echtzeit basieren.
Transportkoeffizienten entsprechen Proportionalitätskoeffizienten, die die Relaxation einer Flüssigkeit oder eben eines Quark-Gluon Plasmas von einer kleinen Störung beschreiben. Damit sind sie unmittelbar mit der Zeit verknüpft. Über Kubo-Formeln lassen sie sich jedoch mit Gleichgewichtserwartungswerten retardierter Korrelatoren verknüpfen und werden so in Gitter QCD zugänglich.
In der vorliegenden Dissertation berechnen wir den Transportkoeffizienten κ in Gittereichtheorie für das Yang-Mills Plasma. Dabei nutzen wir aus, dass dieser Transportkoeffizient eine triviale analytische Fortsetzung vom retardierten zum Euklidischen Korrelator besitzt, welcher direkt in Gittereichtheorie zugänglich ist. Es ist die erste nichtperturbative Berechnung eines Transportkoeffizienten in QCD ohne weitere Annahmen, wie die Maximum Entropie Methode oder Ansätze, zu treffen.
Top-down influences on ambiguous perception: the role of stable and transient states of the observer
(2014)
The world as it appears to the viewer is the result of a complex process of inference performed by the brain. The validity of this apparently counter-intuitive assertion becomes evident whenever we face noisy, feeble or ambiguous visual stimulation: in these conditions, the state of the observer may play a decisive role in determining what is currently perceived. On this background, ambiguous perception and its amenability to top-down influences can be employed as an empirical paradigm to explore the principles of perception. Here we offer an overview of both classical and recent contributions on how stable and transient states of the observer can impact ambiguous perception. As to the influence of the stable states of the observer, we show that what is currently perceived can be influenced (1) by cognitive and affective aspects, such as meaning, prior knowledge, motivation, and emotional content and (2) by individual differences, such as gender, handedness, genetic inheritance, clinical conditions, and personality traits and by (3) learning and conditioning. As to the impact of transient states of the observer, we outline the effects of (4) attention and (5) voluntary control, which have attracted much empirical work along the history of ambiguous perception. In the huge literature on the topic we trace a difference between the observer's ability to control dominance (i.e., the maintenance of a specific percept in visual awareness) and reversal rate (i.e., the switching between two alternative percepts). Other transient states of the observer that have more recently drawn researchers' attention regard (6) the effects of imagery and visual working memory. (7) Furthermore, we describe the transient effects of prior history of perceptual dominance. (8) Finally, we address the currently available computational models of ambiguous perception and how they can take into account the crucial share played by the state of the observer in perceiving ambiguous displays.
In this thesis, different physical and electrical aspects of silicon microstrip sensors and low-mass multi-line readout cables have been investigated. These silicon microstrip sensors and readout cables will be used in the Silicon Tracking System (STS) of the fixed-target heavy-ion Compressed Baryonic Matter (CBM) experiment which is under development at the upcoming Facility for Antiproton and ion Research (FAIR) in Darmstadt, Germany. The highly segmented low-mass tracking system is a central CBM detector system to resolve the high tracking densities of charged particles originating from beam-target interactions. Considering the low material budget requirement the double-sided silicon microstrip detectors have been used in several planar tracking stations. The readout electronics is planned to be installed at the periphery of the tracking stations along with the cooling system. Low-mass multi-line readout cables shall bridge the distance between the microstrip sensors and the readout electronics. The CBM running operational scenario suggests that some parts of the tracking stations are expected to be exposed to a total integrated particle fluence of the order of 1e14 neq/cm2. After 1e14 neq/cm2 the damaged modules in the tracking stations will be replaced. Thus radiation hard sensor is an important requirement for the sensors. Moreover, to cope with the high reaction rates, free-streaming (triggerless) readout electronics with online event reconstruction must be used which require high signal-to-noise (SNR) ratio (i.e., high signal efficiency, low noise contributions). Therefore, reduction in noise is a major goal of the sensor and cable development.
For better insight into the different aspects of the silicon microstrip sensors and multi-line readout cables, the simulation study has been performed using SYNOPSYS TCAD tools. 3D models of the silicon microstrip sensors and the readout cables were implemented which is motivated by the stereoscopic construction of the silicon microstrip sensors. For the evaluation of the performance of the silicon microstrip sensors in the harsh radiation environment during experimental operation, a radiation damage model has been included. It reproduces the behavior of the irradiated CBM prototype sensors. In addition to the static characteristics, the interstrip parameters relevant to understand strip isolation and cross-talk issues have been extracted. The transient simulations have been performed to estimate the charge collection performance of the irradiated sensors. The signal transmission in the readout cables has been evaluated with the finite element simulation tool RAPHAEL. Based on the performance of the front-end electronics used for early prototyping in the CBM experiment, capacitive and resistive noise contributions from the silicon microstrip sensors and multi-line readout cables have been extracted.
To validate the aforementioned simulations, numerous tests have been performed both on the multi-line readout cables and silicon microstrip sensors. Characterizations of multi-line readout cables and silicon microstrip sensors in laboratory conditions have been found to agree reasonably well with the simulations. Considering the expected radiation environment the behavior of silicon microstrip sensors have been studied especially in terms of noise and charge collection efficiency. Source-scan of the silicon microstrip sensors using 241Am is presented. In order to test a first system of detector stations including the data acquisition system, slow control and online monitoring software and for track reconstruction, in-beam tests have been performed at the COSY synchrotron of the Research Center Juelich, Germany. Further, different design parameters have been suggested to improve the sensor and readout cable design on the basis of the simulations and the measurements. Many of these parameters have been implemented in the new prototypes under production. These new prototypes will be tested in-beam by the end of 2013.
The simultaneous description of the hadronic yields, pion, kaon and proton spectra, elliptic flows and femtoscopy scales in hydrokinetic model of A+A collisions is presented at different centralities for the top RHIC and LHC energies. The hydrokinetic model is used in its hybrid version that allows one to switch correctly to the UrQMD cascade at the isochronic hypersurface which separates the cascade stage and decaying hydrodynamic one. The results are compared with pure hybrid model where hydrodynamics and hadronic cascade are matching just at the non-space-like hypersurface of chemical freeze-out. The initial conditions are based on both Glauber- and KLN- Monte-Carlo simulations and results are compared. It seems that the observables, especially femtoscopy data, prefer the Glauber initial conditions. The modification of the particle number ratios caused, in particular, by the particle annihilations at the afterburn stage is analyzed.
This work derived the value of α-induced production cross sections of 77Kr and 77Br at α-energies of 12 MeV and 14 MeV, the thick target yields of 77Kr and 77Br at α-energies of 11.19 MeV, 13 MeV and 15.1 MeV and the thick target yield of 80Br as well as 80mBr at an α-energy of 15.1 MeV using the activation technique...
Experiments for p-process nucleosynthesis with special focus on the most abundant p nucleus 92Mo
(2014)
This thesis describes experimental investigations and astrophysical network calculations relevant for the nucleosynthesis of the p nuclei. These 35 proton-rich isotopes cannot be produced by neutron-capture reactions which is the general production mechanism for elements heavier than iron in the r and s processes. Therefore, other mechanisms like photo-disintegration reactions on heavy seed nuclei (γ process) or proton-capture reactions are taken into account.
The modelling of these processes relies on a hugh amount of reactions which mostly occur for unstable isotopes. This demands, in combination with the contribution of excited states to the stellar rate, the prediction of the rates by a suited theoretical approach: the Hauser-Feshbach statistical model. To improve the reliability of the predictions, systematic experimental investigations are performed within this work for the nuclear input to the calculations. The study of charged-particle optical model potentials using the activation approach for the investigation of (α,n) and (p,n) reactions is described as well as the investigation of (γ,n) reactions in a broad mass range of 140 ≤ A ≤ 210.
However, there are also key reactions which are of special interest for the nucleosynthesis of individual p nuclei. An impressive example is the puzzle about the production of the most abundant p nucleus 92Mo. Within this work, the results of an experiment using high-resolution in-beam γ-spectroscopy for the study of the 90Zr(p,γ) reaction are summarized. In addition, the efforts to investigate the 91Nb(p,γ) reaction in standard kinematics by the production of target of the unstable isotope 91Nb to be used with the high-intensity proton-beam provided by the accelerator of FRANZ, Frankfurt, are discussed.
Finally, the influence of experimental results in astrophysical network calculations is discussed using post-processing nucleosynthesis methods for the γ process in type II supernovae.
XIII Nuclei in the Cosmos, 7-11 July, 2014 Debrecen, Hungary.
As an alternative production scenario to the so-called g process, the most abundant p nucleus 92Mo may be produced by a chain of proton-capture reactions in supernovae type Ia. The reactions 90Zr(p,g) and 91Nb(p,g) are the most important reactions in this chain. We have measured the first reaction using high-resolution in-beam g-spectroscopy at HORUS, Cologne, Germany, to contribute to the existing experimental data base. So far, we only investigated the high-energy part of the Gamow window and the analysis is still in progress. We plan to study the second reaction in standard kinematics at the FRANZ facility, Frankfurt, Germany. Current developments at FRANZ will be explained in detail.
We show how repulsive interactions of deconfined quarks as well as confined hadrons have an influence on the baryon number susceptibilities and the curvature of the chiral pseudo-critical line in effective models of QCD. We discuss implications and constraints for the vector interaction strength from comparisons to lattice QCD and comment on earlier constraints, extracted from the curvature of the transition line of QCD and compact star observables. Our results clearly point to a strong vector repulsion in the hadronic phase and near-zero repulsion in the deconfined phase.
The nature of spontaneous brain activity during wakefulness and sleep: a complex systems approach
(2014)
In this thesis we study the organization of spontaneous brain activity during wakefulness and all stages of human non-rapid eye movement sleep using an approach based on developments and tools from the theory of complex systems. After a brief introduction to sleep physiology and different theoretical models of consciousness, we study how the organization of cortical and sub-cortical interactions is modified during the sleep cycle. Our results, obtained by modeling global brain activity as a complex functional interaction network, show that the capacity of the human brain to integrate different segregated functional modules is diminished during deep sleep, in line with an informationintegration account of consciousness. We then show that integration is impaired not only across space but also in the temporal domain, by assesing the emergence of long-range temporal correlations in brain activity and how they are modified during sleep. We propose an encompassing explanation for this observation, namely, that the brain operatsat different dynamical regimes during different states of consciousness. Finally, we gather massive amounts of data from different collaborative projects and apply machine learning techniques to reveal that the \resting state" cannot be considered as a pure brain state and is in fact a mixture containing different levels of conscious awareness. This last result has deep implications for future attempts to develop a discovery science of brain function both in health and disease.
Oscillations play a critical role in cognitive phenomena and have been observed in many brain regions. Experimental evidence indicates that classes of neurons exhibit properties that could promote oscillations, such as subthreshold resonance and electrical gap junctions. Typically, these two properties are studied separately but it is not clear which is the dominant determinant of global network rhythms. Our aim is to provide an analytical understanding of how these two effects destabilize the fluctuation-driven state, in which neurons fire irregularly, and lead to an emergence of global synchronous oscillations. Here we show how the oscillation frequency is shaped by single neuron resonance, electrical and chemical synapses.The presence of both gap junctions and subthreshold resonance are necessary for the emergence of oscillations. Our results are in agreement with several experimental observations such as network responses to oscillatory inputs and offer a much-needed conceptual link connecting a collection of disparate effects observed in networks.
The ab-initio molecular dynamics framework has been the cornerstone of computational solid state physics in the last few decades. Although it is already a mature field it is still rapidly developing to accommodate the growth in solid state research as well as to efficiently utilize the increase in computing power. Starting from the first principles, the ab-initio molecular dynamics provides essential information about structural and electronic properties of matter under various external conditions. In this thesis we use the ab-initio molecular dynamics to study the behavior of BaFe2As2 and CaFe2As2 under the application of external pressure. BaFe2As2 and CaFe2As2 belong to the family of iron based superconductors which are a novel and promising superconducting materials. The application of pressure is one of two key methods by which electronic and structural properties of iron based superconductors can be modified, the other one being doping (or chemical pressure). In particular, it has been noted that pressure conditions have an important effect, but their exact role is not fully understood. To better understand the effect of different pressure conditions we have performed a series of ab-initio simulations of pressure application. In order to apply the pressure with arbitrary stress tensor we have developed a method based on the Fast Inertial Relaxation Engine, whereby the unit cell and the atomic positions are evolved according to the metadynamical equations of motion. We have found that the application of hydrostatic and c axis uniaxial pressure induces a phase transition from the magnetically ordered orthorhombic phase to the non-magnetic collapsed tetragonal phase in both BaFe2As2 and CaFe2As2. In the case of BaFe2As2, an intermediate tetragonal non-magnetic tetragonal phase is observed in addition. Application of the uniaxial pressure parallel to the c axis reduces the critical pressure of the phase transition by an order of magnitude, in agreement with the experimental findings. The in-plane pressure application did not result in transition to the non-magnetic tetragonal phase and instead, rotation of the magnetic order direction could be observed. This is discussed in the context of Ginzburg-Landau theory. We have also found that the magnetostructural phase transition is accompanied by a change in the Fermi surface topology, whereby the hole cylinders centered around the Gamma point disappear, restricting the possible Cooper pair scattering channels in the tetragonal phase. Our calculations also permit us to estimate the bulk moduli and the orthorhombic elastic constants of BaFe2As2 and CaFe2As2.
To study the electronic structure in systems with broken translational symmetry, such as doped iron based superconductors, it is necessary to develop a method to unfold the complicated bandstructures arising from the supercell calculations. In this thesis we present the unfolding method based on group theoretical techniques. We achieve the unfolding by employing induced irreducible representations of space groups. The unique feature of our method is that it treats the point group operations on an equal footing with the translations. This permits us to unfold the bandstructures beyond the limit of translation symmetry and also formulate the tight-binding models of reduced dimensionality if certain conditions are met. Inclusion of point group operations in the unfolding formalism allows us to reach important conclusions about the two versus one iron picture in iron based superconductors.
And finally, we present the results of ab-initio structure prediction in the cases of giant volume collapse in MnS2 and alkaline doped picene. In the case of MnS2, a previously unobserved high pressure arsenopyrite structure of MnS2 is predicted and stability regions for the two competing metastable phases under pressure are determined. In the case of alkaline doped picene, crystal structures with different levels of doping were predicted and used to study the role of electronic correlations.
In this thesis hard probes are studied in the partonic transport model BAMPS (Boltzmann Approach to MultiParton Scatterings). Employing Monte Carlo techniques, this model describes the 3+1 dimensional evolution of the quark gluon plasma phase in ultra-relativistic heavy-ion collisions by propagating all particles in space and time and carrying out their collisions according to the Boltzmann equation. Since hard probes are produced in hard processes with a large momentum transfer, the value of the running coupling is small and their interactions should be describable within perturbative QCD (pQCD). This work focuses on open heavy flavor, but also addresses the suppression of light parton jets, in particular to highlight differences due to the mass. For light partons, radiative processes are the dominant contribution to their energy loss. For heavy quarks, we show that also binary interactions with a running coupling and an improved Debye screening matched to hard-thermal-loop calculations play an important role. Furthermore, the impact of the mass in radiative interactions, prominently named the dead cone effect, and the interplay with the Landau-Pomeranchuk-Migdal (LPM) effect are studied in great detail. Since the transport model BAMPS has access to all medium properties and the space time information of heavy quarks, it is the ideal tool to study the dissociation and regeneration of J/psi mesons, which is also investigated in this thesis.
We have studied one-proton-removal reactions of about 500MeV/u 17Ne beams on a carbon target at the R3B/LAND setup at GSI by detecting beam-like 15O-p and determining their relative-energy distribution. We exclusively selected the removal of a 17Ne halo proton, and the Glauber-model analysis of the 16F momentum distribution resulted in an s2 contribution in the 17Ne ground state of about 40%.
Der langsame Neutroneneinfang-Prozess (s-Prozess) ist für die Erzeugung von rund der Hälfte der Elemente zwischen Eisen und Blei verantwortlich. Sein Reaktionspfad enthält entlang des Stabilitätstals einige Verzweigungspunkte an instabilen Isotopen, deren Neutroneneinfangquerschnitte die Produktion schwererer Elemente und deren Isotopen-Verhältnisse beeinflussen. Kennt man ihre Zerfalls- und Neutroneneinfangraten unter den angenommenen stellaren Bedingungen ist es möglich, Rückschlüsse auf die physikalischen Umstände während des s-Prozesses zu ziehen. Einer dieser Verzweigungspunkte ist 63-Ni. Die experimentelle Bestimmung des differentiellen Wirkungsquerschnittes für den Neutroneneinfang an diesem Isotop ist das primäre Ergebnis der vorliegenden Arbeit. Der 63-Ni(n,gamma)- Wirkungsquerschnitt hat Einfluss auf die Häufigkeiten von 64-Ni, die Kupfer- und die Zink-Isotope. Die Sensitivität der Produktion dieser Nuklide in s-Prozess-Szenarien wurde ebenfalls im Rahmen dieser Arbeit anhand von Simulationen des entsprechenden Nukleosynthesenetzwerkes untersucht. Zudem wurde die Datenlage für s-Prozess-Modelle mit einer Flugzeit-Messung des 63-Cu(n,gamma)-Wirkungsquerschnitts erweitert.
Die beiden Experimente zur Querschnittsbestimmung von 63-Ni und 63-Cu fanden am Los Alamos Neutron Science Center in New Mexico, USA statt. Eine aus angereichertem 62-Ni hergestellte 63-Ni-Probe wurde im Rahmen einer Flugzeit-Messung gepulst mit Neutronen bestrahlt. Der Nachweis der prompten Gammastrahlung aufgrund von Neutroneneinfängen erfolgte mit dem 4π-BaF_2-Detektor DANCE. Die kalorimetrische Messung macht den Q-Wert der Reaktion für jedes Einfangereignis zugänglich und erlaubt die Unterscheidung von Ereignissen verschiedener Isotope. Es konnte gezeigt werden, dass diese Methode die Bestimmung von Querschnitten selbst mit Proben ermöglicht, die nur zu einem Bruchteil aus dem zu untersuchenden Isotop bestehen. Der 63-Ni(n,gamma)-Wirkungsquerschnitt wurde für den Energiebereich von 40 eV bis 500 keV mit einer maximalen Unsicherheit von 15% bestimmt. Es zeigte sich, dass theoretische Abschätzungen den Querschnitt bislang um etwa einen Faktor 2 unterschätzten. In demselben Energiebereich konnte der 63-Cu(n,gamma)-Wirkungsquerschnitt mit einer maximalen Unsicherheit von 8% vermessen werden.
In this thesis, a novel 257 kHz chopper device was numerically developed, technically designed and experimentally commissioned; a 4-solenoid, low-energy ion beam transport line was numerically investigated, installed and experimentally commissioned; and a novel massless beam-separation system was numerically developed.
The chopper combines a pulsed electric field with a static magnetic field in an ExB or Wien-filter type field configuration. Chopped beam pulses with a 257 kHz repetition rate and rise times of 110 ns were experimentally achieved using a 14 keV helium beam.
Due to the achieved results, the complete LEBT line for the future Frankfurt Neutron Source FRANZ is ready to deliver a dc or a pulsed beam. At the same time, the LEBT section represents an attractive test stand for the study of low-energy ion beams. It combines magnetic lenses, which allow space-charge compensated beam transport, and a chopper system capable of producing short beam pulses in the hundred nanosecond range. Since these beam pulses are transported onwards, their longitudinal and transverse properties can be analyzed. The pulse duration and time of flight are well below the rise time for the space-charge compensation through residual gas ionization. This opens the possibility for dedicated investigations of the transport of short, low-energy beam pulses including longitudinal and transverse space-charge effects and of relevant issues like the dynamics of space-charge compensation and electron effects in short pulses.
In this work we study basic properties of unstable particles and scalar hadronic resonances, respectively, within simple quantum mechanical and quantum field theoretical (effective) models. The term 'particle' is usually assigned to entities, described by physical theories, that are able to propagate over sufficiently large time scales (e.g. from a source to a detector) and hence could be identified in experiments - one especially should be able to measure some of their distinct properties like spin or charge. Nevertheless, it is well known that there exists a huge amount of unstable particles to which it seems difficult to allocate such definite values for their mass and decay width. In fact, for extremely short-lived members of that species, so called resonances, the theoretical description turns out to be highly complicated and requires some very interesting concepts of complex analysis.
In the first chapter, we start with the basic ideas of quantum field theory. In particular, we introduce the Feynman propagator for unstable scalar resonances and motivate the idea that this kind of correlation function should possess complex poles which parameterize the mass and decay width of the considered particle. We also brie
y discuss the problematic scalar sector in particle physics, emphasizing that hadronic loop contributions, given by strongly coupled hadronic intermediate states, dominate its dynamics. After that, the second chapter is dedicated to the method of analytic continuation of complex functions through branch cuts. As will be seen in the upcoming sections, this method is crucial in order to describe physics of scalar resonances because the relevant functions to be investigated (namely, the Feynman propagator of interacting quantm field theories) will also have branch cuts in the complex energy plane due to the already mentioned loop contributions. As is consensus among the physical community, the understanding of the physical behaviour of resonances requires a deeper insight of what is going on beyond the branch cut. This will lead us to the idea of a Riemann surface, a one-dimensional complex manifold on which the Feynman propagator is defined.
We then apply these concepts to a simple non-relativistic Lee model in the third chapter and demonstrate the physical implications, i.e., the motion of the propagator poles and the behaviour of the spectral function. Besides that, we investigate the time evolution of a particle described by such a model. All this will serve as a detailed preparation in order to encounter the rich phenomena occuring on the Riemann surface in quantum field theory. In the last chapter, we finally concentrate on a simple quantm field theoretical model which describes the decay of a scalar state into two (pseudo)scalar ones. It is investigated how the motion of the propagator poles is in
uenced by loop contributions of the two (pseudo)scalar particles. We perform a numerical study for a hadronic system involving a scalar seed state (alias the σ-meson) that couples to pions. The unexpected emergence of a putative stable state below the two-pion threshold is investigated and it is claeifieed under which conditions such a stable state appears.
Cryo-electron tomography (CET) is a unique technique to visualize biological objects under near-to-native conditions at near-atomic resolution. CET provides three-dimensional (3D) snapshots of the cellular proteome, in which the spatial relations between macromolecular complexes in their near native cellular context can be explored. Due to the limitation of the electron dose applicable on biological samples, the achievable resolution of a tomogram is restricted to a few nanometers, higher resolution can be achieved by averaging of structures occurring in multiples. For this purpose, computational techniques such as template matching, sub-tomogram averaging and classification are essential for a meaningful processing of CET data.
This thesis introduces the techniques of template matching and sub-tomogram averaging and their applications on real biological data sets. Subsequently, the problem of reference bias, which restricts the applicability of those techniques, is addressed. Two methods that estimate the reference bias in Fourier and real space are demonstrated. The real space method, which we have named the “M-free” score, provides a reliable estimation of the reference bias, which gives access to the reliability of the template matching or sub-tomogram averaging process. Thus, the “M-free” score makes those approaches more applicable to structural biology. Furthermore, a classification algorithm based on Neural Networks (NN) called “KerDenSOM3D” is introduced, which is implemented in 3D and compensates for the missing-wedge. This approach helps extracting different structural states of macromolecular complexes or increasing the class purity of data sets by eliminating outliers. A comprehensive comparison with other classification methods shows superior performance of KerDenSOM3D.
Ziel dieser Arbeit war, mittels einer (n,γ)-Aktivierung, 129Te zu erzeugen und eine Teilchenzahlbestimmung durchzuführen. Aktivierung der Probe am Forschungsreaktor TRIGA und Spektrenaufnahme mittels eines HPGe-Detektors erfolgten im Mai 2014 am Institut für Kernchemie der Johannes Gutenberg Universität in Mainz.
Die Teilchenzahl des Tochternuklids 129I kann anhand der Teilchenzahlen des Isomers und des Grundzustandes von 129Te berechnet werden. In den Aktivierungen #2 bis #6 wurden (14.27 ± 0.53)x10exp12 Iodnuklide erzeugt. Angegeben ist die maximal mögliche Anzahl von Iodteilchen bei unendlich langer Wartezeit und vollständigem Zerfall aller Tellurnuklide.
Beobachtet werden konnte die Abnahme der Grundzustandsaktivität bis zum Erreichen des Gleichgewichts aus Nachbevölkerung durch das Isomer und Zerfall. Die Grundzustandslinien der Energien von 459.60 keV, 487 keV, 1083 KeV und 1111 keV konnten zu dieser Untersuchung herangezogen werden. Diese 4 Linien erfüllen die erforderten Konsistenzkriterien bezüglich der Systematik und können daher zur Teilchenzahlbestimmung des Grundzustandes verwendet werden (Seite 31).
Der Einfluss der Eigenabsorption ist noch zu untersuchen, da die genaue Position der Probe im Polyethylenbehältnis nicht bestimmt werden konnte. Weiterhin ist die Datenanalyse der ersten Aktivierung aufgrund des Detektorwechsels noch nicht erfolgt. Der Austausch war wegen technischer Probleme notwendig. Ziel weiterführender Untersuchungen ist, eine erneute Halbwertszeitbestimmung des radioaktiven 129I vorzunehmen. Sie ist von Interesse, angesichts des Widerspruchs zweier Veröffentlichungen. Die Halbwertszeit des 129I kann Aufschluss über stellare Bedingungen des s-Prozesses geben.
The measurement of dielectrons (electron-positron pairs) allows to investigate the properties of strongly interacting matter, in particular the Quark-Gluon Plasma (QGP), which is created in relativistic heavy-ion collisions at the LHC. The evolution of the collision can be probed via dielectrons since electrons do not interact strongly and are created during all stages of the collision. One of the interests in dielectron measurements is motivated by possible modifications of the electromagnetic emission spectrum in the QGP, where pp collisions are used as a medium-free reference. The dielectron spectrum consists of contributions from various processes. In order to estimate contributions of known dielectron sources, simulations of the so-called dielectron cocktail are performed. In this thesis, dielectron cocktails in minimum bias pp collisions at p s = 7 TeV, p–Pb collisions at p sNN = 5.02 TeV and in central (0-10%) and semi-central (20-50%) Pb–Pb collisions at p sNN = 2.76 TeV at the LHC are presented.
The neutron sensitivity of the C6D6 detector setup used at n_TOF facility for capture measurements has been studied by means of detailed GEANT4 simulations. A realistic software replica of the entire n_TOF experimental hall, including the neutron beam line, sample, detector supports and the walls of the experimental area has been implemented in the simulations. The simulations have been analyzed in the same manner as experimental data, in particular by applying the Pulse Height Weighting Technique. The simulations have been validated against a measurement of the neutron background performed with a natC sample, showing an excellent agreement above 1 keV. At lower energies, an additional component in the measured natC yield has been discovered, which prevents the use of natC data for neutron background estimates at neutron energies below a few hundred eV. The origin and time structure of the neutron background have been derived from the simulations. Examples of the neutron background for two different samples are demonstrating the important role of accurate simulations of the neutron background in capture cross-section measurements.