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The PANDA experiment will be one of the flagship experiments at the future Facility for Antiproton and Ion Research (FAIR) in Darmstadt, Germany. It is a versatile detector dedicated to topics in hadron physics such as charmonium spectroscopy and nucleon structure. A DIRC counter will deliver hadronic particle identification in the barrel part of the PANDA target spectrometer and will cleanly separate kaons with momenta up to 3.5 GeV/c from a large pion background. An alternative DIRC design option, using wide Cherenkov radiator plates instead of narrow bars, would significantly reduce the cost of the system. Compact fused silica photon prisms have many advantages over the traditional stand-off boxes filled with liquid. This work describes the study of these design options, which are important advancements of the DIRC technology in terms of cost and performance. Several new reconstruction methods were developed and will be presented. Prototypes of the DIRC components have been built and tested in particle beam, and the new concepts and approaches were applied. An evaluation of the performance of the designs, feasibility studies with simulations, and a comparison of simulation and prototype tests will be presented.
Eine möglichst realistische Abschätzung von Strahlenschäden ist von entscheidender Bedeutung im Strahlenschutz und für die Strahlentherapie. Die primären Strahlenschäden an der DNS werden heute mit Monte-Carlo-Codes berechnet. Diese Codes benötigen möglichst genaue Fragmentierungsquerschnitte verschiedenster biomolekularer Systeme als Eingangsparameter. Im Rahmen der vorliegenden Arbeit wurde ein Experiment aufgebaut, welches die Bestimmung der Fragmentierungsquerschnitte von Biomolekülen ermöglicht. Die einzelnen Baugruppen des Aufbaus wurden vor dem Beginn des Experimentes bezüglich ihrer Eigenschaften, die die Genauigkeit der Messergebnisse beeinflussen können, charakterisiert. Die Resultate dieser Experimente werden als Eingangsdaten für die Berechnung von primären strahleninduzierten Schäden in der DNS mit Hilfe von Monte-Carlo-Codes eingesetzt.
Eine besondere Herausforderung stellte die Präparation eines Überschallgasstrahls für biomolekulare Substanzen dar. Für die Präparation müssen die Targetsubstanzen zunächst in die Gasphase überführt werden. Im Falle von Biomolekülen ist diese Überführung auf Grund ihrer niedrigen Dampfdrücke bei Raumtemperatur und chemischen Reaktivität mit technischen Problemen verbunden. Die Probleme wurden mittels einer speziellen Konstruktion der Präparationseinrichtung, welche eine direkte Einleitung der Probensubstanzen in die vom Trägergas durchströmte Mischkammer ermöglicht, gelöst. Für die Genauigkeit der gemessenen Fragmentierungsquerschnitte spielen mehrere Faktoren eine Rolle. Neben dem Bewegungsprofil des Überschallgasstrahls, den kinetischen Energien der Fragmentionen und den ionenoptischen Eigenschaften des Flugzeitspektrometers beeinflusst die geometrische Beschaffenheit der Detektionszone maßgeblich die Genauigkeit des Experimentes. Die Position und Ausdehnung des sichtbaren Volumens sind nicht nur durch den Überlappungsbereich zwischen dem Elektronen- und dem Überschallgasstrahl bestimmt, sondern hängen auch von der kinetischen Energie der Fragmente ab. Für dessen Ermittlung wurden daher auch die Trajektorien der Fragmente simuliert. Bei den Experimenten an der PTB-Apparatur ist die frei wählbare Zeitdifferenz zwischen dem Auslösen eines Elektronenpulses und dem Absaugen der Fragmentionen ein wichtiger Messparameter. Ihr Einfluss auf die Messergebnisse wurde ebenfalls neben der Nachweiswahrscheinlichkeit des verwendeten Ionendetektors untersucht. Die Kalibrierung der Flugzeitspektren, d. h. die Umwandlung der Flugzeitspektren in Massenspektren erfolgte anhand der bekannten Flugzeitspektren von Edelgasen und Wasserstoff.
Nach der Charakterisierung der Einflussfaktoren und Kalibrierung der Flugzeitspektren wurden die energieabhängigen Fragmentierungsquerschnitte für Elektronenstoß von mehreren organischen Molekülen, darunter die von Modellmolekülen für die DNS-Bausteine gemessen. Die Flugzeitspektren von THF wurden mit der PTB-Apparatur für einige kinetische Energien der Elektronen in Abhängigkeit von der Zeitdifferenz zwischen dem Auslösen des Elektronenpulses und dem Starten der Analyse durchgeführt. Messungen von Pyrimidin wurden sowohl an der PTB-Apparatur als auch mit COLTRIMS durchgeführt. Die mit COLTRIMS gewonnenen Ergebnisse liefern wichtige Zusatzinformationen über die Fragmentierungsprozesse. COLTRIMS ermöglicht die Messung der zeitlichen Korrelationen zwischen den auftretenden Fragmentionen und damit tiefere Einblicke in die bei der Entstehung der Fragmente beteiligten Reaktionskanäle. Der Vorteil der PTB-Apparatur besteht darin, dass die relativen Auftrittswahrscheinlichkeiten aller Fragmentionen genauer bestimmt werden können.
Construction and commissioning of a setup to study ageing phenomena in high rate gas detectors
(2014)
In high-rate heavy-ion experiments, gaseous detectors encounter big challenges in terms of degradation of their performance due to a phenomenon dubbed ageing. In this thesis, a setup for high precision ageing studies has been constructed and commissioned at the GSI detector laboratory. The main objective is the study of ageing phenomena evoked by materials used to build gaseous detectors for the Compressed Baryonic Matter (CBM) experiment at the future Facility for Antiproton and Ion Research (FAIR).
The precision of the measurement, e.g., of the gain of a gaseous detector, is a key element in ageing studies: it allows to perform the measurement at realistic rates in an acceptable time span. It is well known the accelerating ageing employing high intensity sources might produce misleading results. The primary objective is to build an apparatus which allows very accurate measurements and is thus sensitive to minute degradations in detector performance. The construction and commissioning of the
setup has been carried out in two steps. During the first step of this work, a simpler setup which already existed in the detector laboratory of GSI had been utilised to define all conditions related to ageing studies. The outcome of these studies defined the properties and characteristics that must be met to build and operate a new, sophisticated and precise setup. The already existing setup consisted of two identical Multi Wire Proportional Chambers (MWPCs), a gas mixing station, an 55Fe source, an x-ray generator, an outgassing box and stainless steel tubing. In a first step, the gain and electric field configuration of the MWPCs were simulated by a combination of a gas simulation (Magboltz) and electric field simulation program (Garfield). The performance and operating conditions of the chambers have been thoroughly characterised before utilising them in first preparatory ageing test. The main diagnostic parameter in ageing studies is the detector gain, thus it is mandatory for precise ageing studies to minimise the systematic and statistical variation of the pressure and temperature corrected gain. To achieve the required accuracy, several improvements of the chamber design and the gas system have been implemented. In addition, the temperature measurement has been optimised. During the preparatory tests, several ageing studies have been carried out. The ageing effect of seven materials and gases have been carried out during these tests: RTV-3145, Ar/CO2 gas, Durostone flushed with Ar/Isobutane gas, Vetronit G11, Vetronit G11 contaminated with Micro 3000 and Gerband 705. The results of these studies went into the design of the new sophisticated ageing setup. For example some tests revealed that there was, even after cleaning, a certain level of contamination with "ageing agents" in the existing setup, which made it imperative to ensure a very high level cleanness of all components during the construction of the setup. The curing period of some testing samples like glues or the gas flow rate were found to be very important factors that must be taken into account to obtain comparable results. Very important changes in the chamber design have been made, i.e., the aluminium-Kapton cathodes used in MWPCs have been replaced with multi-wire planes and the fibreglass housing of the chamber has been changed to metal. The second step started with building the new setup which was designed based on the findings from the first step. The new ageing setup consists of three MWPCs, two moving platforms, an 55Fe source, a copper-anode x-ray generator, two outgassing boxes, both flexible and rigid stainless steel tubes. Before fabrication of the chambers, simulations of their electric field and the gain have been done using Magboltz and Garfield programs. After that, the chambers were installed and tested. A 0.3% peak-to-peak residual variation of the corrected gain has been achieved. Finally, the complete setup has been operated with full functionality in no-ageing conditions during one week. This test revealed very stable gain in all three chambers. After that two materials (Gerban 705 and RTV-3145) have been inserted in the two outgassing boxes and tested. They revealed an ageing rate of about 0.3%/mC/cm and 3%/mC/cm respectively. The final test proves the stability and accuracy of the ageing measurements carried out with the ageing setup at the detector laboratory at GSI which is ready to conduct the envisaged systematic ageing studies.
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.
The phenomenon of magnetism has been known to humankind for at least over 2500 years and many useful applications of magnetism have been developed since then, starting from the compass to modern information storage and processing devices. While technological applications are an important part of the continuing interest in magnetic materials, their fundamental properties are still being studied, leading to new physical insights at the forefront of physics. The magnetism of magnetic materials is a pure quantum effect due to the electrons that carry an intrinsic spin of 1/2. The physics of interacting quantum spins in magnetic insulators is the main subject of this thesis.We focus here on a theoretical description of the antiferromagnetic insulator Cs2CuCl4. This material is highly interesting because it is a nearly ideal realization of the two-dimensional antiferromagnetic spin-1/2 Heisenberg model on an anisotropic triangular lattice, where the Cu(2+) ions carry a spin of 1/2 and the spins interact via exchange couplings. Due to the geometric frustration of the triangular lattice, there exists a spin-liquid phase with fractional excitations (spinons) at finite temperatures in Cs2CuCl4. This spin-liquid phase is characterized by strong short-range spin correlations without long-range order. From an experimental point of view, Cs2CuCl4 is also very interesting because the exchange couplings are relatively weak leading to a saturation field of only B_c=8.5 T. All relevant parts of the phase diagram are therefore experimentally accessible. A recurring theme in this thesis will be the use of bosonic or fermionic representations of the spin operators which each offer in different situations suitable starting points for an approximate treatment of the spin interactions. The methods which we develop in this thesis are not restricted to Cs2CuCl4 but can also be applied to other materials that can be described by the spin-1/2 Heisenberg model on a triangular lattice; one important example is the material class Cs2Cu(Cl{4-x}Br{x}) where chlorine is partially substituted by bromine which changes the strength of the exchange couplings and the degree of frustration.
Our first topic is the finite-temperature spin-liquid phase in Cs2CuCl4. We study this regime by using a Majorana fermion representation of the spin-1/2 operators motivated by theoretical and experimental evidence for fermionic excitations in this spin-liquid phase. Within a mean-field theory for the Majorana fermions, we determine the magnetic field dependence of the critical temperature for the crossover from spin-liquid to paramagnetic behavior and we calculate the specific heat and magnetic susceptibility in zero magnetic field. We find that the Majorana fermions can only propagate in one dimension along the direction of the strongest exchange coupling; this reduction of the effective dimensionality of excitations is known as dimensional reduction.
The second topic is the behavior of ultrasound propagation and attenuation in the spin-liquid phase of Cs2CuCl4, where we consider longitudinal sound waves along the direction of the strongest exchange coupling. Due to the dimensional reduction of the excitations in the spin-liquid phase, we expect that we can describe the ultrasound physics by a one-dimensional Heisenberg model coupled to the lattice degrees of freedom via the exchange-striction mechanism. For this one-dimensional problem we use the Jordan-Wigner transformation to map the spin-1/2 operators to spinless fermions. We treat the fermions within the self-consistent Hartree-Fock approximation and we calculate the change of the sound velocity and attenuation as a function of magnetic field using a perturbative expansion in the spin-phonon couplings. We compare our theoretical results with experimental data from ultrasound experiments, where we find good agreement between theory and experiment.
Our final topic is the behavior of Cs2CuCl4 in high magnetic fields larger than the saturation field B_c=8.5 T. At zero temperature, Cs2CuCl4 is then fully magnetized and the ground state is therefore a ferromagnet where the excitations have an energy gap. The elementary excitations of this ferromagnetic state are spin-flips (magnons) which behave as hard-core bosons. At finite temperatures there will be thermally excited magnons that interact via the hard-core interaction and via additional exchange interactions. We describe the thermodynamic properties of Cs2CuCl4 at finite temperatures and calculate experimentally observable quantities, e.g., magnetic susceptibility and specific heat. Our approach is based on a mapping of the spin-1/2 operators to hard-core bosons, where we treat the hard-core interaction by the self-consistent ladder approximation and the exchange interactions by the self-consistent Hartree-Fock approximation. We find that our theoretical results for the specific heat are in good agreement with the available experimental data.
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.
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.
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.
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.
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.