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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.
Lattice simulation of a center symmetric three dimensional effective theory for SU(2) Yang-Mills
(2010)
We present lattice simulations of a center symmetric dimensionally reduced effective field theory for SU(2) Yang Mills which employ thermal Wilson lines and three-dimensional magnetic fields as fundamental degrees of freedom. The action is composed of a gauge invariant kinetic term, spatial gauge fields and a potential for the Wilson line which includes a "fuzzy" bag term to generate non-perturbative fluctuations between Z(2) degenerate ground states. The model is studied in the limit where the gauge fields are set to zero as well as the full model with gauge fields. We confirm that, at moderately weak coupling, the "fuzzy" bag term leads to eigenvalue repulsion in a finite region above the deconfining phase transition which shrinks in the extreme weak-coupling limit. A non-trivial Z(N) symmetric vacuum arises in the confined phase. The effective potential for the Polyakov loop in the theory with gauge fields is extracted from the simulations including all modes of the loop as well as for cooled configurations where the hard modes have been averaged out. The former is found to exhibit a non-analytic contribution while the latter can be described by a mean-field like ansatz with quadratic and quartic terms, plus a Vandermonde potential which depends upon the location within the phase diagram. Other results include the exact location of the phase boundary in the plane spanned by the coupling parameters, correlation lengths of several operators in the magnetic and electric sectors and the spatial string tension. We also present results from simulations of the full 4D Yang-Mills theory and attempt to make a qualitative comparison to the 3D effective theory.
In the course of this thesis we discuss a certain kind of supersolid, the lattice-supersolid, which can be realized using quantum gases in an optical lattice trap. The lattice-supersolid, which simultaneously possesses off-diagonal and diagonal long-range order in its density matrix and also breaks the discrete translational symmetry of an underlying lattice, is induced by self-ordering of the gas due to strong long-range van der Waals interactions. In the considered scenario, the interactions are facilitated by the excitation of atomic Rydberg states, which exhibit enhanced van der Waals forces.
In the first part of this thesis (chapters 1-3), we review the relevant basics of quantum gases, Rydberg physics and introduce the extended Bose-Hubbard model. We start with the relevant methods and devices of the vast toolbox available in common quantum gas experiments, as well as consider the main concepts behind superfluidity and supersolidity. This is followed by an introduction of some basic concepts of Rydberg atoms in quantum many-body systems, with a focus on the facilitation of long-range interactions and the implementation in a theoretical model. Thereafter a brief introduction is given, on the realization of the Bose-Hubbard model in optical lattice systems and its extension to include Rydberg states, which concludes the introductory part of this thesis.
In the following part (chapters 4-6), we introduce the theoretical tools used to derive the results presented in the final part. First, an introduction to a real-space extension of bosonic dynamical mean-field theory (RB-DMFT) for bosonic systems with long-range interactions in the Hartree approximation is given. This method is based on the non-perturbative self-consistent evaluation of the lattice Green’s function, which also incorporates the effect of nearest neighbor correlations due to the non-condensed particles. Then we focus on a quasiparticle expansion of the Bose-Hubbard model, which has its foundation in linearized fluctuations of a static mean-field ground-state, allowing for the prediction of a vast range of experimentally relevant observables. Lastly, we introduce an efficient truncation scheme for the local bosonic Fock-basis, which allows for the simulation of phases with high condensate density at a vastly reduced computational effort.
In the final part (chapters 7 and 8), we discuss the application of both methods to itinerant bosonic gases in two-dimensional optical lattices, in order to predict the equilibrium ground-state phases, as well as the signatures of supersolidity and its formation in spectral functions and the dynamic and static structure factor. Specifically, we focus on two limiting cases. Firstly, we consider a two-component gas, as realized by two hyperfine ground states, for example, of rubidium-87, where one component is off-resonantly excited to a Rydberg state, which generates a soft-core shaped interaction potential. Secondly, we discuss the opposing limit, using near-resonant excitations
of Rydberg states, where the interacting component now directly corresponds to the Rydberg state, which interacts via a van der Waals potential. In both cases we discuss the rich variety of supersolid phases, which are found for a wide range of parameters. We also discuss how some of these phases can be realized in experiment.
In the subsequent appendices (A to D) we discuss some methodological details. Most notably, we consider the possible Fock-extension of the Hartree approximation (appendix A), introduced in the RB-DMFT treatment of the extended Bose-Hubbard model.
In our daily life, we carry out lots of tasks like typing, playing tennis, and playing the piano, without even noticing there is sequence learning involved. No matter how simple or complex they are, these tasks require the sequential planning and execution of a series of movements. As an ability of primary importance in one’s life, and an ability that everyone manages to learn, action-sequence learning has been studied by researchers from different fields: psychologists, neurophysiologists as well as roboticists. In the concept of sequence learning, perceptual learning and motor learning, implicit and explicit learning have been studied and discussed independently.
We are interested in infancy research, because infants, with underdeveloped brain functions and with limited motor ability, have little experience with the world and not yet built internal models as presumption of how to interpret the world. A series of infant experiments in the 1980s provided evidence that infants can rapidly develop anticipatory eye movements for visual events. Even when infants have no control of those spatial-temporal patterns, they can respond actually prior to the onset of the visual event, referred as "Anticipation".
In this work, we applied a gaze-contingent paradigm using real-time eye tracking to put 6- and 8-month-old infants in direct control of their visual surroundings. This paradigm allows the infant to change an image on a screen by looking at a peripheral red disc, which functions as a switch. We found that infants quickly learn to perform eye movements to trigger the appearance of new stimuli and that they anticipate the consequences of their actions in an early stage of the experiment.
Attention-shift from learning one stimulus to the next novel stimulus is important in sequence learning. In the test phase of infant visual habituation with two objects, we propose a new theory of explaining the familiarity-to-novelty shift. In our opinion an infant’s interest in a stimulus is related to its learning progress, the improvement of performance. As a consequence, infants prefer the stimulus which their current learning progress is maximal for, naturally giving rise to a familiarity-to-novelty shift in certain situations. Our network model predicts that the familiarity-to-novelty-shift only emerges for complex stimuli that produce bell-shaped learning curves after brief familiarization, but does not emerge for simple stimuli that produce exponentially decreasing learning curves or for long familiarization time, which is consistent with experimental results. This research suggests the infant's interest in a stimulus may be related to its current learning progress. This can give rise to a dynamic familiarity-to-novelty shift depending on both the infant's learning efficiency and the task complexity.
We know that for both infants and adults, the performance on certain motor-sequence tasks can be improved through practice. However, adults usually have to perform complex tasks in complicated environments; for example, learning multiple tasks is unavoidable in our daily life. In existing research, learning multiple tasks showed puzzling and seemingly contradictory results. On the one hand, a wide variety of proactive and retroactive interference effects have been observed when multiple tasks have to be learned. On the other hand, some studies have reported facilitation and transfer of learning between different tasks.
In order to find out the interaction between multiple-task learning, and to find an optimal training schedule, we use a recurrent neural network to model a series of experiments on movement sequence learning. The network model learns to carry out the correct movement sequences through training and reproduces differences between training schedules such as blocked training vs. random training in psychophysics experiments. The network model also shows striking similarity to human performance, and makes prediction for tasks similarity and different training schedules.
In conclusion, the thesis presents learning sequences of actions in infants and recurrent neural networks. We carried out a gaze-contingent experiment to study infants’ rapid anticipation of their own action outcomes, and we also constructed two recurrent neural network models, with one model explaining infant attention shift in visual habituation, and the other model directing to task similarity and training schedule in motor sequence control in adults.
Fourier-Transform Infrarot Differenz Spektroskopie ist eine Methode. die es erlaubt, selbst kleinste konformelle Änderungen in der Umgebung der katalytischen Zentren in Enzymen selektiv und mit hoher Zeitauflösung zu messen. Diese Technik wurde an Oxidasen von Paracoccus denitrificans, Thermus thermophilus und Escherichia coli angewandt, um einen Einblick in strukturelle und molekulare Prozesse der Bindung und Dynamik von Liganden am binuklearen Zentrum zu erhalten. Die pH- und Temperatur-Abhängigkeit von CO Schwingungsmoden sowie deren Verhalten nach der Photolyse konnten zeitaufgelöst untersucht und miteinander verglichen werden. Bei Temperaturen >180K war die Bestimmung von thermodynamischen Parametern wie Enthalpie-Barrieren und Arrhenius-Vorfaktoren möglich. Aus dem Verlauf der Rückbindungskinetiken ließen sich ferner Rückschlüsse über die konformelle Heterogenität der Bindung ziehen. Für Temperaturen um 140K konnte das Protein im "quasistationären" Zustand vermessen werden, da Rückreaktionen des Liganden an die Bindungsstelle des Häm a3 unterbunden waren. Trotz der strukturellen Ähnlichkeit und analoger Funktion zeigten diese typischen Oxidasen große Unterschiede sowohl im Reaktionszentrum als auch im kinetischen Verhalten des Liganden. Die kinetischen Parameter für alle untersuchten Oxidasen weichen deutlich voneinander ab und spiegeln unter anderem die Stärke der Bindung am CUB wider. Die Temperaturabhängigkeit der Populationen der CO-Konformere und die äquivalente Rückbindungs-Kinetik der unterschiedlichen Konformere in den Oxidasen aus dem thermophilen System weisen auf ein strukturelles Merkmal in der Nähe des binuklearen Zentrums hin, das den Populations-Austausch in anderen Oxidasen unterbindet. Aufgrund der pH-Abhängigkeit der entsprechenden Oxidasen kann man schließen, daß diese Eigenschaft durch eine oder mehrere protonierbare Gruppen bewirkt wird, die die unterschiedlichen Konformere in bestimmten Positionen fixiert hält. Die Rückbindungsraten des Liganden zeigen für die T. thermophilus Oxidasen eine Rückbindung erster Ordnung. was auf eine homogene Verteilung der zwei Konformer-Populationen im Enzym deutet. Hingegen zeigte die Oxidase aus P. denitrificans für die Rückbindung eine Verteilung der Reaktionsraten. Ursache dafür ist ein sehr heterogenes Ensemble an Proteinen, das minimale strukturelle Unterschiede im Konformationsraum des Reaktionszentrums aufweist. Ein weiterer Aspekt der Arbeit war die Beobachtung von Absorptionsbanden der Hämpropionate an Cytochrome c Oxidase von Paracoccus denitrificans nach CO Rückbindung. Sowohl über 13C-isotopenmarkierte Hämpropionate als auch über ortsgerichtete Mutagenese in deren unmittelbarer Umgebung konnten definierte Banden-Zuordnungen im IR-Differenzspektrum erhalten werden. Experimente am Enzym mit Mutationen an der Stelle Asp 399 zeigten, daß die strukturellen Eigenschaften des Häm a3-CuB Zentrums im wesentlichen von dieser Veränderung nicht beeinflußt werden. Jedoch war die pH-Abhängigkeit der CO Konformere hier unterbunden, was auf deren Einfluß auf eine Protonierbarkeit im Wildtyp-Enzym hinweist. Rückschlüsse anhand der Mutante Asp399Asn zeigten (über den Verlust der pH-Abhängigkeit) ganz klar, daß alle unterschiedlichen CO-Konformere funktionell intakt sind. FT-IR Messungen an einem weiteren Enzym, der isolierten Cytochrom bd Oxidase aus E. coli, zeigten bei einer Untersuchung der CO Rückbindungs-Eigenschaften bei 84K die ausschließliche Rückbindung an das Häm d. der möglichen Sauerstoff-Bindungsstelle. Die Bindungsstelle an Häm b, die zu ca. 5% ebenfalls CO bindet, kann bei diesen Temperaturen nicht wiederbesetzt werden. Im typischen Spektralbereich von 1680 bis 1760 cm hoch minus 1 konnten eindeutig die Absorptionsbanden von Asparagin- oder Glutaminsäure-Seitenketten identifiziert werden. Über einen direkten Vergleich der Spektren, die über Redox-Reaktion und CO Rückbindung erhalten wurden, konnten diese Signale als klar in der direkten Umgebung des binuklearen Zentrums lokalisiert zugeordnet werden. Eine Rolle als vorübergehender Protonen-Akzeptor/Donor auf dem Weg zur Sauerstoff-Bindungsstelle ist naheliegend.
The small photoreceptor Photoactive Yellow Protein (PYP) enters a reversible photocycle after excitation with blue light. The intermediate states are formed on timescales ranging from femtoseconds to seconds including chromophore isomerization and protonation as well as large structural rearrangements. To obtain local dynamic information the vibrational label thiocyanate (SCN) can be inserted site-specifically at any desired position in the protein by cysteine mutation and cyanylation. The label's CN stretch vibration is highly sensitive to polarity, hydrogen bonding interactions and electric fields and is spectrally well separated from the overlapping protein absorptions. During the course of this thesis it was impressively demonstrated that the successful incorporation of the SCN label at selected positions in PYP provides a powerful tool to study structure changes and dynamics during the photocycle and enhance the local information that are obtained by infrared (IR) spectroscopic methods. Hence the SCN-labeled protein mutants were studied under equilibrium (steady-state) and non-equilibrium conditions.
Examination of the SCN absorption by FTIR spectroscopy showed the influence of various local environments on the label for different locations in the dark state. The response of the label under illumination with blue light reveals information about structural changes in the signaling state. Additional information for both states were obtained by the vibrational lifetime of the CN vibration measured via ultrafast IR-pump-IR-probe experiments. This observable is particularly sensitive for solvent exposure of the label. Time-resolved IR spectroscopy proved to be an excellent method to follow the protein dynamics throughout most part of the photocycle on a hundreds of femtoseconds to milliseconds timescale. By close inspection of protein and chromophore dynamics in wildtype-PYP over nine decades in time, new insights into the changes leading to the proposed photocycle intermediates were obtained. The investigation of the SCN label allowed to follow the different transient structure changes with high local resolution. Depending on its position within the protein the response of the label provided additional information on the photocycle transitions.
The insights that are obtained by the different observables in the steady-state and by the reaction of the SCN label to formation of the different intermediate states during the photocycle contribute to an improved understanding of local, light-induced structure changes in the photoreceptor PYP. This comprehensive study demonstrated the potential provided by the application of SCN as IR label for investigation of protein dynamics.
Starting from the first observation of the halo phenomenon 20 years ago, more and more neutron-rich light nuclei were observed. The study of unstable nuclear systems beyond the dripline is a relatively new branch of nuclear physics. In the present work, the results of an experiment at GSI (Darmstadt) with relativistic beams of the halo nuclei 8He, 11Li and 14Be with energies of 240, 280 and 305 MeV/nucleon, respectively, impinging on a liquid hydrogen target are discussed. Neutron/proton knockout reactions lead to the formation of unbound systems, followed by their immediate decay. The experimental setup, consisting of the neutron detector LAND, the dipole spectrometer ALADIN and different types of tracking detectors, allows the reconstruction of the momentum vectors of all reaction products measured in coincidence. The properties of unbound nuclei are investigated by reconstructing the relative-energy spectra as well as by studying the angular correlations between the reaction products. The observed systems are 9He, 10He, 10Li, 12Li and 13Li. The isotopes 12Li and 13Li are observed for the first time. They are produced in the 1H(14Be, 2pn)12Li and 1H(14Be, 2p)13Li knockout reactions. The obtained relative-energy spectrum of 12Li is described as a single virtual s-state with a scattering length of as = -22;13.7(1.6) fm. The spectrum of 13Li is interpreted as a resonance at an energy of Er = 1.47(13) MeV and a width of Gamma ~ 2 MeV superimposed on a broad correlated background distribution. The isotope 10Li is observed after one-neutron knockout from the halo nucleus 11Li. The obtained relative-energy spectrum is described by a low-lying virtual s-state with a scattering length as = -22.4(4.8) fm and a p-wave resonance with Er = 0.566(14) MeV and Gamma = 0.548(30) MeV, in agreement with previous experiments. The observation of the nucleus 8He in coincidence with one or two neutrons, as a result of proton knockout from 11Li, allows to reconstruct the relative-energy spectra for the heavy helium isotopes, 9He and 10He. The low-energy part of the 9He spectrum is described by a virtual s-state with a scattering length as = -3.16(78) fm. In addition, two resonance states with l 6= 0 at energies of 1.33(8) and 2.4 MeV are observed. For the 10He spectrum, two interpretations are possible. It can be interpreted as a superposition of a narrow resonance at 1.42(10) MeV and a broad correlated background distribution. Alternatively, the spectrum is being well described by two resonances at energies of 1.54(11) and 3.99(26) MeV. Additionally, three-body energy and angular correlations in 10He and 13Li nuclei at the region of the ground state (0 < ECnn < 3 MeV) are studied, providing information about structure of these unbound nuclear systems.
Energy and environment are two major concerns in the 21st century. At present, the energy required for the daily life still mainly relies on the traditional fossil fuel resources, but the caused air pollution problem and greenhouse effect have seriously threatened the sustainable development of mankind. Another adopted energy source which can provide a large fraction of electricity for the world is the nuclear fission reaction. However, the increasing high-radioactive spent nuclear fuels, which half-lives are usually >1 million years, are becoming the hidden perils to the earth. A great advance in accelerator physics and technology opens an opportunity to solve this dilemma between man and nature, because powerful accelerator-based neutron sources can play important roles for clean nuclear power production, for example: - The Accelerator-Driven System (ADS) can serve as an easy control of a sub-critical fission reactor so that the nuclear fuels will be burnt more completely and safely. - The EUROTRANS project launched by EU is investigating another application of the ADS technology to reduce the radiotoxicity and the volume of the existing nuclear waste greatly and quickly in a transmutation way. - The developing international IFMIF plant will be used to test and qualify reactor materials for future fusion power stations, which can produce much cleaner nuclear electricity more efficiently than the fission ones. Therefore, the R&D of high-power driver linacs (HPDL) is of a worldwide importance. As the proverb said, "everything is hard at the beginning", the front end is the most difficult part for realizing an HPDL machine. Based on the RFQ and H-type DTL structures, this dissertation is dedicated to study the beam dynamics in the presence of significantly strong space-charge effects while accelerating intense hardon beams in the low- and medium-beta-region. Besides the 5mA/30mA, 17MeV proton injector (RFQ+DTL) and the 125mA, 40MeV deuteron DTL of the above-mentioned EUROTRANS and IFMIF facilities, a 200mA, 700keV proton RFQ has been also intensively studied for a small-scale but ultra-intense neutron source FRANZ planned at Frankfurt University. The most remarkable properties of the FRANZ RFQ and the IFMIF DTL are the design beam intensities, 200mA and 125mA, which are the record values for the proton and deuteron linacs, respectively. Though the design intensities for the two development stages, XT-ADS (5mA) and EFIT (30mA), of the EUROTRANS injector are well within the capability of the modern RF linac technology, the special design concept for an easy upgrade from XT-ADS to EFIT brings unusual challenges to realize a linac layout which allows flexible operation with different beam intensities. To design the 200mA FRANZ RFQ and the two-intensity EUROTRANS RFQ, the classic LANL (Los Alamos National Laboratory) Four-Section Procedure, which was developed by neglecting the space-charge forces, is not sufficient anymore. Abandoning the unreasonable constant- B (constant-transverse-focusing-strength) law and the resulting inefficient evolution manners of dynamics parameters adopted by the LANL method, a new design approach so-called "BABBLE", which can provide a "Balanced and Accelerated Beam Bunching at Low Energy", has been developed for intense beams. Being consistent with the beam-development process including space-charge effects, the main features of the "BABBLE" strategy (see Pages 55-58) are: 1) At the entrance, the synchronous phase is kept at = phi s = -90° while a gradual increase in the electrode modulation is started so that the input beam can firstly get a symmetrical and soft bunching within a full-360° phase acceptance. 2) In the following main bunching section, B is increasing to balance the stronger and stronger transverse defocusing effects induced by the decreasing bunch size so that the bunching speed can be fast and safely increased. 3) When the real acceleration starts, the quickly increased beam velocity will naturally weaken the transverse defocusing effects, so B is accordingly falling down to avoid longitudinal emittance growths and to allow larger bore apertures. Taking advantage of the gentle initial bunching and the accelerated main bunching under balanced forces enabled by the "BABBLE" strategy, a 2m-long RFQ with beam transmission in excess of 98% and low emittance growths has been designed for FRANZ, and a 4.3m-long RFQ with almost no beam losses and flat emittance evolutions at both 5mA and 30mA has been designed for EUROTRANS. All design results have proven that the "BABBLE" strategy is a general design approach leading to an efficient and robust RFQ with good beam quality in a wide intensity-range from 0mA to 200mA (even higher). To design the IFMIF DTL and the injector DTL part of the EUROTRANS driver linac, which have been foreseen as the first real applications of the novel superconducting CH-DTL structure, intensive attempts have been made to fulfill the design goals under the new conditions, e.g. long drift spaces, SC transverse focusing elements and high accelerating gradients. For the IFMIF DTL, the preliminary IAP design has been considerably improved with respect to the linac layout as well as the beam dynamics. By reserving sufficient drift spaces for the cryosystem, diagnostic devices, tuner and steerer, introducing SC solenoid lenses and adjusting the Linac Design for Intense Hadron Beams accelerating gradients and accordingly other configurations of the cavities (see Pages 78-80), a more realistic, reliable and efficient linac system has been designed. On the other hand, the specifications and positions of the transverse focusing elements (see Pages 81-82) as well as the phase- and energy-differences between the bunch-center particle and the synchronous particle at the beginning of the phi s=0° sections have been totally redesigned (see Pages 83-84) resulting in good beam performances in both radial and longitudinal planes. For the EUROTRANS injector DTL, in addition to the above-mentioned procedures, extra optimization concepts to coordinate the beam dynamics between two intensities, such as employing short adjustable rebunching cavities with phi s = -90° (see Page 116), have been applied. ...
Low-energy effective models for two-flavor quantum chromodynamics and the universality hypothesis
(2014)
Die Untersuchung der Natur auf extremen Längenskalen hat seit jeher zu bahnbrechenden Einsichten und Innovationen geführt. Insbesondere zu unserem heutigen Verständnis, dass Nukleonen (Protonen und Neutronen) aus Quarks zusammengesetzt sind, die infolge der starken Wechselwirkung, vermittelt durch Gluonenaustausch, gebunden sind. Mit dem Aufkommen des Quarkmodells wurde bald die Quantenchromodynamik (QCD) erfolgreich in der Beschreibung vieler messbarer Eigenschaften der starken Wechselwirkung. Um es mit Goethe zu sagen: mit den modernen Hochenergie-Beschleuniger-Experimenten wird versucht unser Verständnis davon zu verbessern, was die Welt im Innersten zusammenhält. Am Large Hadron Collider (LHC) werden beispielsweise Protonen derart beschleunigt und miteinander zur Kollision gebracht, dass bislang unerreichte Energiedichten auftreten, infolge derer Temperatur und baryochemisches Potential Werte annehmen, die mit denen des frühen Universums vergleichbar sind. Es gibt sowohl theoretische als auch experimentelle Hinweise darauf, dass hadronische Materie mit zunehmender Temperatur und/oder zunehmendem baryochemischen Potentials einen Phasenübergang durchläuft, hin zu einem exotischen Zustand, der als Quark-Gluon-Plasma bekannt ist. Dieser Übergang wird begleitet von einem sogenannten chiralen Übergang. Es ist eine wichtige Frage, ob es sich bei diesem chiralen Übergang um einen echten Phasenübergang (von erster bzw. zweiter Ordnung) handelt, oder ob ein sogenannter crossover vorliegt. Einige Resultate deuten auf einen crossover für verschwindendes baryochemisches Potential und einen Phasenübergang erster Ordnung für verschwindende Temperatur hin, lassen jedoch noch keinen endgültigen Schluss zu, ob dies tatsächlich der Realität entspricht. Wenn ja, so liegt die Annahme nahe, dass ein kritischer Endpunkt existiert, an dem der chirale Übergang von zweiter Ordnung ist. In der Tat existiert ein kritischer Endpunkt in einigen theoretischen Zugängen zur Beschreibung des chiralen Phasenübergangs, deren Aussagekraft seit jeher lebhaft diskutiert wird. Ein zentrales Ziel des zukünftigen CBM-Experiments an der GSI in Darmstadt ist es, die Existenz im Experiment zu überprüfen.
In der Nähe des QCD-(Phasen)übergangs ist es die Abwesenheit jeglicher perturbativer Entwicklungsparameter, die exakte analytische Berechnungen verbietet. Das gleiche gilt für realistische effektive Modelle für QCD. Nichtperturbative Methoden sind daher unverzichtbar für die Untersuchung des QCD-Phasendiagramms. Zu den populärsten dieser Zugänge gehören Gitter-QCD, Resummierungsverfahren, der Dyson-Schwinger-Formalismus, sowie die Funktionale Renormierungsgruppe (FRG). All diese Methoden ergänzen sich gegenseitig und werden zum Teil auch miteinander kombiniert. Eine der Stärken der FRG-Methode ist, dass sie nicht nur erfolgreich auf effektive Modelle angewendet werden kann, sondern auch auf QCD selbst. Für letztere Ab-Initio-Rechnungen sind die aus effektiven Modellen für QCD gewonnenen Resultate von grossem Wert.
Der Schwerpunkt der vorliegenden Arbeit liegt auf der Fragestellung von welcher Ordnung der chirale Phasenübergang im Fall von genau zwei leichten Quarksorten ist. Problemstellungen wie die Suche nach einer Antwort auf die Frage nach den Bedingungen für die Existenz eines Phasenübergangs zweiter Ordnung, die Bestimmung der Universalitätsklasse in diesem Fall etc. erfordern Wissen aus verschiedenen Gebieten.
Kapitel 1 besteht aus einer allgemeinen Einleitung.
In Kapitel 2 stellen wir zunächst einige allgemeine Aspekte von Phasenübergängen dar, die von besonderer Relevanz für das Verständnis des Renormierungsgruppen-Zugangs zu ebendiesen sind. Unser Fokus liegt hierbei auf einer kritischen Untersuchung der Universalitätshypothese. Insbesondere die Rechtfertigung des linearen Sigma-Modells als effektive Theorie für den chiralen Ordnungsparameter beruht auf der Gültigkeit selbiger.
Kapitel 3 beschäftigt sich mit dem chiralen Phasenübergang von einem allgemeinen Standpunkt aus. Wir ergünzen wohlbekannte Fakten durch eine detaillierte Diskussion der sogenannten O(4)-Hypothese. Die Überprüfung der Gültigkeit selbiger wird schließlich in Kapitel 6 und 7 in Angriff genommen.
In Kapitel 4 stellen wir die von uns benutzte FRG-Methode vor. Außerdem diskutieren wir den Zusammenhang zwischen effektiven Theorien für QCD und der QCD selbst.
Kapitel 5 behandelt ein mathematisches Thema, das für alle unserer Untersuchungen unabdingbar ist, nämlich die systematische Konstruktion polynomialer Invarianten zu einer gegebenen Symmetrie. Wir präsentieren einen einfachen, jedoch neuartigen, Algorithmus für die praktische Konstruktion von Invarianten einer gegebenen polynomialen Ordnung.
Kapitel 6 widmet sich Renormierungsgruppen-Studien einer Reihe dimensional reduzierter Theorien. Von zentralem Interesse ist hierbei das lineare Sigma-Modell, insbesondere in Anwesenheit der axialen Anomalie. Es stellt sich heraus, dass die Fixpunkt-Struktur des letzteren vergleichsweise kompliziert ist und ein tieferes Verständnis der zugrundeliegenden Methode sowie ihrer Annahmen erfordert. Dies führt uns zu einer sorgfältigen Analyse der Fixpunkt-Struktur von Modellen verschiedenster Symmetrien. Im Zusammenhang mit der Untersuchung des Einflusses von Vektor- und Axial-Vektor-Mesonen stoßen wir hierbei auf eine neue Universalitä}tsklasse.
Während wenig Spielraum für die Wahl der Symmetriegruppe der effektiven Theorie für den chiralen Ordnungsparameter besteht, ist die Identifizierung der Ordnungsparameter-Komponenten mit den relevanten mesonischen Freiheitsgraden hochgradig nichttrivial. Diese Wahl entspricht der Wahl einer Darstellung der Gruppe und kann zur Zeit nicht eindeutig aus der QCD hergeleitet werden. Es ist daher unerlässlich, verschiedene Möglichkeiten auszutesten. Eine wohlbekannte Wahl besteht darin, das Pion und seinen chiralen Partner, das Sigma-Meson, der O(4)-Darstellung für SU(2)_A x SU(2)_V zuzuordnen, welche einen Phasenübergang zweiter Ordnung erlaubt. Dieses Szenario ist jedoch nur dann sinnvoll, wenn nahe der kritischen Temperatur alle anderen Mesonen entsprechend schwer sind. Im Fall von genau zwei leichten Quarkmassen erfordert dies eine hinreichend große Anomaliestärke. Berücksichtigt man zusätzlich zum Pion und Sigma-Meson auch das Eta-Meson und das a_0-Meson, liefern unsere derzeitigen expliziten Rechnungen keinen Nachweis für die Existenz eines Phasenübergang zweiter Ordnung. Stattdessen spricht die Abwesenheit eines physikalischen (hinsichtlich der Massen) infrarot-stabilen Fixpunktes für einen fluktuationsinduzierten Phasenübergang erster Ordnung. Dieses Ergebnis ist auch zu erwarten (jedoch nicht impliziert), allein durch die Existenz zweier quadratischer Invarianten. Es besteht jedoch immer noch eine hypothetische Chance auf einen Phasenübergang zweiter Ordnung in der SU(2)_A x U(2)_V -Universalitätsklasse. Dies wäre der Fall, wenn der entsprechende von uns gefundene unphysikalische infrarot-stabile Fixpunkt physikalisch werden sollte in höherer Trunkierungsordnung. Interessanterweise finden wir bei endlicher Temperatur für gewisse Parameter einen Phasenübergang zweiter Ordnung. Es ist unklar, ob diese Wahl der Parameter in den Gültigkeitsbereich der dimensional reduzierten Theorie fällt.
Erst vor kurzem (Ende September 2013) wurde die Existenz eines infrarot-stabilen U(2)_A x U(2)_V-symmetrischen Fixpunkts durch Pelissetto und Vicari verifiziert (die zugehörige anomale Dimension ist mit 0.12 angegeben). Dieses Resultat war sehr
überraschend, da für zwei leichte Quarksorten und abwesende Anomalie ein Phasenübergang erster Ordnung relativ gesichert erschien, insbesondere durch die Epsilon-Entwicklung. Offensichtlich versagt letztere jedoch im Limes D=3, also für drei räumliche Dimensionen, da lediglich Fixpunkte gefunden werden können, die auch nahe D=4 existieren. Inspiriert durch diesen wichtigen Fund führen wir eine FRG-Fixpunktstudie in lokaler Potential-Näherung und hoher Trunkierungsordnung (bis zu zehnter Ordnung in den Feldern) durch. Die Stabilitätsanalyse besitzt jedoch leider keine Aussagekraft, da die Stabilitätsmatrix für den Gaußschen Fixpunkt marginale Eigenwerte besitzt. Wir sind überzeugt davon, dass dies nicht mehr der Fall ist, wenn man über die lokale Potential-Näherung hinausgeht und eine nichtverschwindende anomale Dimension zulässt. Die bisherigen Resultate verdeutlichen die Limitierungen der lokalen Potential-Näherung und der Epsilon-Entwicklung, auf denen unsere Untersuchungen zur Universalitätshypothese in weiten Teilen beruhen. Systematische Untersuchungen der Fixpunktstruktur von Modellen mit acht Ordnungsparameter-Komponenten wurden in der Literatur im Rahmen der Epsilon-Entwicklung durchgeführt und im Rahmen dieser Dissertation innerhalb der lokalen Potential-Näherung. Die meisten der Vorhersagen der Epsilon-Entwicklung konnten bestätigt werden, einige hingegen werden in Frage gestellt durch das Auftauchen marginaler Stabilitätsmatrix-Eigenwerte.
Einige wichtige Fragestellungen können nicht im Rahmen einer dimensional reduzierten Theorie behandelt werden, da die explizite Temperaturabhängigkeit in diesem Fall eliminiert wurde.
Insbesondere ist es in diesem Fall nicht möglich, die Stärke eines Phasenübergangs erster Ordnung vorherzusagen, da diese von Observablen (Meson-Massen und die Pion-Zerfallskonstante im Vakuum) abhängen, an die man bei verschwindender Temperatur fitten muss. Dieser Umstand führt uns zu solchen FRG-Studien, in denen die Temperatur als expliziter Parameter verbleibt.
Ein beträchtlicher Teil der für die vorliegende Dissertation zur Verfügung stehenden Arbeitszeit wurde darauf verwendet, eigene Implementierungen geeigneter Algorithmen zur numerischen Lösung der auftretenden partiellen Differentialgleichungen zu finden. Exemplarische Routinen (welche ausschließlich wohlbekannte Methoden nutzen) sind in einem Anhang zur Verfügung gestellt. Das Hauptziel der vorliegenden Arbeit, die Anwendung auf effektive Modelle für QCD, wird in Kapitel 7 präsentiert. Unsere (vorläufigen) FRG-Studien des linearen Sigma-Modells mit axialer Anomalie bei nichtverschwindender Temperatur erlauben verschiedene Szenarien. Sowohl einen extrem schwach ausgeprägten, als auch einen sehr deutlichen Phasenübergang erster Ordnung, ganz abhängig von der Wahl der Ultraviolett-Abschneideskala und oben genannter Parameter. Sogar ein Phasenübergang zweiter Ordnung scheint möglich für gewisse Parameterwerte. Um verlässliche Schlussfolgerungen zu ziehen, sind weitere Untersuchungen nötig und bereits im Gange. In Kapitel 7 verifizieren wir außerdem bereits bekannte numerische Resultate für das Quark-Meson-Modell.
The main focus of research in the field of high-energy heavy-ion physics is the study of the quark-gluon plasma (QGP). Topic of the present work is the measurement of electron-positron pairs (dielectrons), which grant direct access to some of the key properties of this state of matter, since after their formation they leave the hot and dense medium without significant interaction. In particular, the measurement of the initial QGP temperature is considered a "holy grail" of heavy-ion physics. Therefore, in addition to the analysis of existing data, a feasibility study has been conducted to determine to which extent this goal would be achievable by upgrading the ALICE experiment at CERN.
Dielectrons are produced during all stages of a heavy-ion collision, with their invariant mass reflecting the amount of energy available at the time of their formation. Dielectrons of highest mass are thus produced in the initial scatterings of the colliding nuclei by quark-antiquark annihilation. Correlated electron-positron pairs can also emerge from the decay chains of early-produced pairs of heavy-flavour (HF) particles. During the QGP stage and at the beginning of the hadronic phase, the system emits thermal radiation in the form of photons and dielectrons, which carry information about the medium temperature to the observer. In the final stage of the collision, decays of light-flavour (LF) hadrons produce additional contributions to the dielectron spectrum.
The present work is based on early data from the ALICE experiment recorded from lead-lead collisions at a center-of-mass energy of 2.76 TeV. Due to the limited amount of data, a focus is placed on achieving high efficiencies throughout the analysis. To this end, a special electron identification strategy is developed and a custom track selection applied, together resulting in a tenfold increase in pair efficiency. The dielectron spectrum is evaluated on a statistical basis, using a pair prefilter, which is optimized based on two signal quality criteria, to reduce the fraction of electrons and positrons from unwanted sources at minimum signal loss. In addition, an artifact of the track reconstruction is exploited to suppress pairs from photon conversions and to correct the dielectron yield for a contribution from different-conversion pairs. The main signal uncertainty is extracted from the deviation between results of 20 analysis settings and amounts to 20% in most of the studied kinematic range.
For comparison with the analysis results, a hadronic cocktail consisting of the LF and HF contributions is simulated, which can reasonably well describe the measured dielectron production, with a hint of an enhancement at low invariant mass. Two approaches to model the in-medium modification of the heavy-flavour are followed, resulting in up to 50% suppression, which creates some additional space for a thermal contribution at intermediate mass.
For a complete comparison between experimental data and theoretical expectation, two model calculations are consulted. The Thermal Fireball Model provides predictions for thermal dielectron radiation from the QGP and hadron gas. The data tends to be better described with these additional thermal contributions. For a comparison with a prediction by the UrQMD model, the HF component of the cocktail is subtracted from the data. This results in better agreement if the HF suppression by in-medium effects is taken into account.
The feasibility study in this work has served as a physical motivation for the ALICE upgrade for LHC Run 3. The precision with which the early temperature of the QGP can be determined via dielectrons is chosen as key observable. A multitude of individual contributions are merged into a fully modeled dielectron analysis. The resulting signal-to-background ratio represents some of the expected systematic uncertainties, while from the significance combined with the planned number of lead-lead collisions a realistic "measurement" with statistical fluctuations around the expected dielectron signal is generated using a Poisson sampling technique. Since the HF yield exceeds the QGP thermal radiation by about an order of magnitude, an additional analysis step exploiting the enhanced track reconstruction is introduced to reduce its contribution by up to a factor of five. The resulting reduction in pair efficiency is overcompensated by an up to hundred times higher collision rate. The entire cocktail is then subtracted from the sampled data to isolate the thermal excess yield. The final analysis of this spectrum shows that the inverse slope of the model prediction, which depends directly on the QGP temperature, can be reproduced within statistical and systematic uncertainties of about 10%.
The promising results of this study have contributed on the one hand to the realization of the ALICE upgrade and to a design decision for the new Inner Tracking System, and at the same time represent exciting predictions for upcoming measurements.
Magnetic characteristics of metal organic low-dimensional quantum spin systems at low temperatures
(2010)
In dieser Arbeit wurden neue Klassen von niedrigdimensionalen metallisch-organischen Materialien untersucht, die es ermöglichen interessante quantenkritische Phänomene (quantum critical phenomena, QCP) wie die Bose-Einstein-Kondensation (Bose-Einstein condensation, BEC) der magnetischen Anregung in gekoppelten Spin-Dimer-Systemen, den Berezinskii-Kosterlitz-Thouless Übergang (Berezinskii-Kosterlitz-Thouless transition, BKT) und die Divergenz des magnetokalorischen Effekts (magnetocaloric effect, MCE) in Quanten-Spinsystemen beim Anlegen eines magnetischen Feldes zu beobachten. Die Niedrigdimensionalität der untersuchten Systeme war sowohl für die theoretische Beschreibung, als auch für die experimentelle Beobachtung der Phänomene von großer Bedeutung. Aus theoretischer Sicht eröffnet die Beschäftigung mit diesen Systemen die Möglichkeit, einfache Modelle zu entwickeln, die exakt lösbar sind und erlaubt somit ein qualitatives Verständnis der magnetischen Phänomene. Von experimenteller Seite ist es von größtem Interesse, dass durch das Zusammenspiel von Niedrigdimensionalität, konkurrierenden Wechselwirkungen und starker Quantenfluktuation exotische und aufregende magnetische Phänomene (quantenkritische Phänomene) entstehen, die mit verschiedenen experimentellen Methoden untersucht werden können. Um die intrinsischen Eigenschaften der quantenkritischen Phänomene zu verstehen ist es wichtig, die Phänomene an einfachen und gut kontrollierbaren niedrigdimensionalen Modellsystemen wie ein- oder zweidimensionalen Systemen zu untersuchen. ...
Magnetism is a beautiful example of a macroscopic quantum phenomenon. While known at least since the ancient Greeks, a microscopic theoretical explanation of magnetism could only be achieved with the advent of quantum mechanics at the beginning of the 20th century. Then it was understood that in a certain class of solids the famous Pauli exclusion principle leads to an effective interaction between the microscopic magnetic moments, i.e., the spins, which favors an ordered, and hence macroscopically magnetic, state. Nowadays, magnetic phenomena are used in a host of applications, and are especially relevant for information storage and processing technologies.
Despite the long history of the field, magnetic phenomena are still an active research topic. In particular, in the last decade the fields of spintronics and spin-caloritronics emerged, which manipulate the microscopic spins via charge and heat currents respectively. This opens new avenues to potential applications; including the possibility to use the magnetic spin degrees of freedom instead of charges as carriers of information, which could provide a number of advantages such as reduced losses and further miniaturization.
In this thesis we do not delve any further into the realm of possible applications. Instead we use sophisticated theories to explore the microscopic spin dynamics which is the basis of all such applications. We also focus on a particular compound: Yttrium-iron garnet (YIG), which is a ferrimagnetic insulator. This material has been widely used in experiments on magnetism over the last decades, and is a popular candidate for spintronic devices. Microscopically, the low-energy magnetic properties of YIG can be described by a ferromagnetic Heisenberg model. For spintronics and spin-caloritronics applications, it is however insufficient to only consider the magnetic degrees of freedom; one should also include the coupling of the spins to the elastic lattice vibrations, i.e., the phonons. Besides giving an overview on techniques used throughout the thesis, the introductory Ch. 1 provides a discussion of the microscopic Hamiltonian used to model the coupled spin-phonon system in the subsequent chapters.
The topic of Ch. 2 are the consequences of the magnetoelastic coupling on the low-energy magnon excitations in YIG. Starting from the microscopic spin-phonon Hamiltonian, we rigorously derive the magnon-phonon hybridization and scattering vertices in a controlled spin wave expansion. For the experimentally relevant case of thin YIG films at room temperature, these vertices are then used to compute the magnetoelastic modes as well as the magnon damping. In the course of this work, the damping of magnons in this system was also investigated experimentally using Brillouin light scattering spectroscopy. While comparison to the experimental data shows that the magnetoelastic interactions do not dominate the total magnon relaxation in the experimentally accessible regime, we are able to show that the spin-lattice relaxation time is strongly momentum dependent, thereby providing a microscopic explanation of a recent experiment.
In the final Ch. 3, we investigate a different phenomenon occurring in thin YIG films: Room temperature condensation of magnons. Prior work attributed this condensation process to quantum mechanics, i.e., it was interpreted as Bose-Einstein condensation. However, this is not satisfactory because at room temperature, the magnons in YIG behave as purely classical waves. In particular, the quantum Bose-Einstein distribution reduces to the classical Rayleigh-Jeans distribution in this case. In addition, the effective spin in YIG is very large. Therefore we start from the hypothesis that the room temperature magnon condensation is actually a new example of the kinetic condensation of classical waves, which has so far only been observed by imaging classical light in a photorefractive crystal. To distinguish this classical condensation from the quantum mechanical Bose-Einstein one, we refer to it as Rayleigh-Jeans condensation. To prove our claim, we consider the classical equations of motion of the coupled spin-phonon system. By eliminating the phonon degrees of freedom, we microscopically derive a non-Markovian stochastic Landau-Lifshitz-Gilbert equation (LLG) for the classical spin vectors. We then use this LLG to perform numerical simulations of the magnon dynamics, with all parameters fixed by experiments. These simulations accurately reproduce all stages of the magnon time evolution observed in experiments, including the appearance of the magnon condensate at the bottom of the magnon spectrum. In this way we confirm our initial hypothesis that the magnon condensation is a classical Rayleigh-Jeans condensation, which is unrelated to quantum mechanics.
Die Infrarotspektroskopie in Verbindung mit photoaktivierbaren Substraten wurde zur Untersuchung von Substrat-Protein-Wechselwirkungen eingesetzt. Dabei wurden Konformationsänderungen der Ca2+-ATPase des Sarkoplasmatischen Retikulums bei Bindung des Nukleotids, der Phosphorylierung der ATPase und der Hydrolyse des Phosphoenzyms beobachtet. Verwender wurden das native Substrat ATP und seine Analoga ADP, AMPPNP, 2'-deoxyATP, 3'-deoxyATP, ITP, AMP, Pyrophosphat, Ribosetriphosphat und TNP-AMP beobachtet. Diese Analoga waren an spezifischen funktionellen Gruppen des Substrats ATP modifiziert. Modifikation der 2'- und 3'-OH Gruppe des Ribosetriphosphats, der beta- und gamma-Phosphatgruppe und der Aminogruppe des Adenins reduzieren das Ausmaß an bindungsinduzierten Konformationsänderungen. Ein besonders starker Effekt wird für die 3'-OH Gruppe und die Aminogruppe des Adenins beobachtet. Dies zeigt die strukturelle Empfindlichkeit des Nukleotid-ATPase Komplexes auf einzelne Wechselwirkungen zwischen dem Nukleotid und der ATPase. Die Wechselwirkungen einer bestimmten Ligandengruppe mit der ATPase hängen von Wechselwirkungen anderer Ligandengruppen mit die ATPase ab. Die TNP-AMP Bindung verursacht teilweise gegenläufige und kleinere Konformationsänderungen verglichen mit ATP. Die Bindungweise von TNP-AMP ist unterschiedlich zu der von ATP, AMPPNP und anderen Tri- und Diphosphat Nucleotiden. Die Phosphorylierung der ATPase wurde mit ITP und 2'-deoxyATP beobachtet. Ca2E1P wurde in gleichem Ausmaß mit ITP und 2'-deoxyATP wie mit ATP akkumuliert, obwohl das Ausmaß der Konformationsänderungen bei Ca2E1P-Bildung geringer ist. Änderungen der 2'- und 3'-OH des Ribosetriphosphats und der Aminogruppe des Adenins beeinflussen die Reaktionsgeschwindigkeit der Phosphorylierung der ATPase. Es gibt keine direkte Verbindung zwischen dem Ausmaß der Konformationsänderung bei Nukleotid- Bindung und der Rate der Phosphorylierung. Das volle Ausmaß der ATP-induzierten Konformationsänderung ist nicht zwingend für die Phosphorylierung. Die Konformationen von Ca2E1N und Ca2E1P hängen vom Nukleotid ab. Dies weist darauf hin, dass die Struktur von ATPase Zuständen heterogener ist, als bisher erwartet. Die Aussagekraft und der Reichtum an Informationen in den Infrarotspektren zeigen, dass hiermit eine leistungsfähige Methode für die Untersuchung von Enzym-Substrat-Wechsel-Wirkungen und das räumliche Abtasten von Bindungstaschen zur Verfügung steht.
In der vorliegenden Arbeit wird die Anwendung einer optischen Detektionsmethode zur Messung der magnetischen Eigenschaften eines verdünnten Systems angewandt und zur Untersuchung von High-Spin–Low-Spin-Komplexen etabliert. Die von uns angewandte MCD-Spektroskopie vereint eine optische Messtechnik, die auf die Messung ultraschneller Effekte erweiterbar ist, mit einer direkten Messmethode für die magnetischen Eigenschaften einer verdünnten Probe des LD-LISC-Komplexes Fe(stpy)4(NCSe)2 (stpy = 4-styrylpyridin). Der LD-LISC-Effekt ist ein licht-induzierter Spinübergang, der auftreten kann, wenn von einem Paar metallorganischer Komplexe eines einen thermischen Spinübergang aufweist und optisch zwischen den beiden Komplexes geschaltet werden kann, beispielsweise durch eine Photoisomerisation. Im Falle von Fe(stpy)4(NCSe)2 ist der cis-Komplex für alle Temperaturen im high-Spin-Zustand, während der trans-Komplex einen thermischen Spinübergang aufzeigt. Mit MCD-Spektroskopie wurde die Magnetisierung des Grundzustands des Fe(II)(stpy)4 (NCS)2-Komplexes in der trans- und der cis-Konfiguration in verdünnten dotierten Polymerfilmen untersucht. Diese magnetooptische Spektroskopie-Technik ermöglicht die Identifizierung von MLCT-Bändern des Eisen-Komplexes, die in optischen Spektren durch stärkere Ligandenabsorptionsbäder überlagert sind und sich nur schlecht auflösen lassen. Das untersuchte System dient als Beispiel für eine Reihe von Verbindungen, die photoschaltbare magnetische Eigenschaften besitzen. Für den Komplex in der cis-Form können bei tiefen Temperaturen durch die Messung von MCD-Daten bei variablem Feld und variabler Temperatur der Spinzustand, der g-Tensor und die Übergangspolarisierung M, sowie achsiale und rhombische Verzerrungen der oktaedrischen Geometrie des Moleküls bestimmt werden. Für den Komplex in der trans-Form konnte erstmals der Unterschied im Spinübergangsverhalten zwischen einer verdünnten Probe und einer konzentrierten Pulverprobe mit einem High-Spin–Low-Spin-Übergangskomplex gezeigt werden. Mit MCD-Spektroskopie konnten die Spinübergangsparameter bestimmt werden, die mit SQUID-Magnetometrie nur unzureichend untersucht werden können. Erste Messungen der MCD-Spektren während gleichzeitiger optischer Anregung zur Beobachtung des LD-LISC-Effekts auf langsamen Zeitskalen zeigen keine Änderung der MCD-Spektren trotz ausreichender Anregungsleistung, die zu einer deutlich messbaren Photoisomerisation geführt hat. Bei einer Temperatur von 120K der Messung ist der trans-Komplex bereits zu einem großen Teil im High-Spin-Zustand, so daß der Unterschied zwischen den Spinzuständen des cis- und des trans-Zustandes unterhalb der Auflösung des verwendeten Aufbaus liegt. Die in dieser Arbeit erzielten Resultate demonstrieren, daß die MCD-Spektroskopie eine geeignete Technik zur Messung des magnetischen Zustands von LD-LISC-Komplexen (oder anderen Komplexen) in verdünnten, zufällig orientierten Proben ist.
This thesis is structured into 7 chapters:
• Chapter 2 gives an overview of the ultrashort high intensity laser interaction with matter. The laser interaction with an induced plasma is described, starting from the kinematics of single electron motion, followed by collective electron effects and the ponderamotive motion in the laser focus and the plasma transparency for the laser beam. The three different mechanisms prepared to accelerate and propagate electrons through matter are discussed. The following indirect acceleration of protons is explained by the Target Normal Sheath Acceleration (TNSA) mechanism. Finally some possible applications of laser accelerated protons are explained briefly.
• Chapter 3 deals with the modeling of geometry and field mapping of magnetic lens. Initial proton and electron distributions, fitted to PHELIX measured data are generated, a brief description of employed codes and used techniques in simulation is given, and the aberrations at the solenoid focal spot is studied.
• Chapter 4 presents a simulation study for suggested corrections to optimize the proton beam as a later beam source. Two tools have been employed in these suggested corrections, an aperture placed at the solenoid focal spot as energy selection tool, and a scattering foil placed in the proton beam to smooth the radial energy beam profile correlation at the focal spot due to chromatic aberrations. Another suggested correction has been investigated, to optimize the beam radius at the focal spot by lens geometry controlling.
• Chapter 5 presents a simulation study for the de-neutralization problem in TNSA caused by the fringing fields of pulsed magnetic solenoid and quadrupole. In this simulation, we followed an electrostatic model, wherethe evolution of both, self and mutual fields through the pulsed magnetic solenoid could be found, which is not the case in the quadrupole and only the growth of self fields could be found. The field mapping of magnetic elements is generated by the Matlab program, while the TraceWin code is employed to study the tracking through magnetic elements.
• Chapter 6 describes the PHELIX laser parameters at GSI with chirp pulse amplification technique (CPA), and Gafchromic Radiochromic film RCF) as a spatial energy resolver film detector. The results of experiments with laser proton acceleration, which were performed in two experimental areas at GSI (Z6 area and PHELIX Laser Hall (PLH)), are presented in section 6.3.
• Chapter 7 includes the main results of this work, conclusions and gives a perspective for future experimental activities.
Particle collisions provide insight into the structure of matter and the interaction of its constituents. Furthermore, they also allow a better understanding of the processes involved in the formation of the universe. To cover these diverse areas, it is necessary to study different observables and collision systems. A particular challenge is to find a suitable measurable observable for a theoretically meaningful variable and to develop a measurement process taking into account the experiment. The analyses of particle collisions in this thesis cover many of the challenges and objectives mentioned above. The focus of the work is the analysis of isolated photons at an energy of √s = 7 TeV. In addition, the work also includes measurements of the average transverse momentum in Pb-Pb collisions at an energy of √s = 2.76 TeV.
Apart from the collision system, the two analyses complement each other in other respects. The measurement of isolated photons represents the first measurement of this observable with ALICE and thus lays the foundation for further measurements at other collision systems and energies. The measurement of the mean transverse momentum, on the other hand, is based on an established measurement and thus allows the comparison of different collision systems. Likewise, the physical processes studied differ. With the measurement of isolated photons, hard scattering processes in the collisions can be investigated, while the average transverse momentum allows a description of the underlying event.
When measuring isolated photons, it should be noted that isolated photons are a measurable observable that cannot be assigned to an explicit physical process. The isolation criterion used in the analysis serves to increase the fraction of prompt photons from 2→2 processes. These photons can contribute to a better understanding of the parton density function (PDF) of gluons, as well as be used as a reference for perturbative QCD calculations.
Of particular importance for the analysis are the cluster shape and the energy within a certain radius around the potential photon. The combination of these two quantities allows determining the background using the ABCD method established by CDF and ATLAS. The result obtained in this way extends the previous measurements of the cross-section of isolated photons at the LHC to lower transverse momenta. Similarly, the previous measurements of the cross-section as a function of the scale variable xT are extended to lower values.
The main focus of the measurement of the average transverse momentum of charged particles ⟨pT⟩ is to compare the measurement for the pp, p-Pb, and Pb-Pb collision systems. To obtain a direct comparison between the different collision systems, ⟨pT ⟩ is measured against the true multiplicity nch. Since the multiplicity range of pp and p-Pb collisions is limited, the analysis in Pb-Pb collisions is restricted to nch = 100. This range corresponds to peripheral Pb-Pb collisions. A particular focus of the analysis is the determination and reduction of the electromagnetic background in peripheral Pb-Pb collisions and the determination of nch based on the measured multiplicity nacc . The different collision systems show similar behavior with increasing multiplicity. The steepest increase occurs at low multiplicities and changes for all collision systems at nch = 14. With higher multiplicities, the slope reduces further, with the effect being most pronounced in Pb-Pb collisions.
The search for a modification of hadron properties inside nuclear matter at normal and/or high temperature and density is one of the more interesting issues of modern nuclear physics. Dilepton experiments, by providing interesting results, give insight into the properties of strong interaction and the nature of hadron mass generation. One of these research tools is the HADES spectrometer. HADES is a high acceptance dilepton spectrometer installed at the heavy-ion synchrotron (SIS) at GSI, Darmstadt. The main physics motivation of HADES is the measurement of e+e- pairs in the invariant-mass range up to 1 GeV/c2 in pion- and proton-induced reactions, as well as in heavy-ion collisions. The goal is to investigate the properties of the vector mesons rho, omega and of other hadrons reconstructed from e+e- decay pairs. Dileptons are penetrating probes allowing to study the in-medium properties of hadrons. However, the measurement of such dilepton pairs is difficult because of a very large background from other processes in which leptons are created. This thesis presents the analysis of the data provided by the first physic run done with the HADES spectrometer. For the first time e+e- pairs produced in C+C collisions at an incident energy of 2 GeV per nucleon have been collected with sufficient statistics. This experiment is of particular importance since it allows to address the puzzling pair excess measured by the former DLS experiment at 1.04 AGeV. The thesis consists of five chapters. The first chapter presents the physics case which is addressed in the work. In the second chapter the HADES spectrometer is introduced with the characteristic of specific detectors which are part of the spectrometer. Chapter three focusses on the issue of charged-particle identification. The fourth chapter discusses the reconstruction of the di-electron spectra in C+C collisions. In this part of the thesis a comparison with theoretical models is included as well. The conclusion and final remarks are given in chapter five.
The elements in the universe are mainly produced by charged-particle fusion reactions and neutron-capture reactions. About 35 proton-rich isotopes, the p-nuclei, cannot be produced via neutron-induced reactions. To date, nucleosynthesis simulations of possible production sites fail to reproduce the p-nuclei abundances observed in the solar system. In particular, the origin of the light p-nuclei 92Mo, 94Mo, 96Ru and 98Ru is little understood. The nucleosynthesis simulations rely on assumptions about the seed abundance distributions, the nuclear reaction network and the astrophysical environment. This work addressed the nuclear data input.
The key reaction 94Mo(g,n) for the production ratio of the p-nuclei 92Mo and 94Mo was investigated via Coulomb dissociation at the LAND/R3B setup at GSI Helmholtzzentrum für Schwerionenforschung in Darmstadt, Germany. A beam of 94Mo with an energy of 500 AMeV was directed onto a lead target. The neutron-dissociation reactions following the Coulomb excitation by virtual photons of the electromagnetic field of the target nucleus were investigated. All particles in the incoming and outgoing channels of the reaction were identified and their kinematics were determined in a complex analysis. The systematic uncertainties were analyzed by calculating the cross sections for all possible combinations of the data selection criteria. The integral Coulomb dissociation cross section of the reaction 94Mo(g,n) was determined to be (571 +- 14 (stat) +- 46 (syst) ) mb. The result was compared to the data obtained in a real photon experiment carried out at the Saclay linear accelerator. The ratio of the integral cross sections was found to be 0.63 +- 0.07, which is lower than the expected value of about 0.8.
The nucleosynthesis of the light p-nuclei 92Mo, 94Mo, 96Ru and 98Ru was investigated in post-processing nucleosynthesis simulations within the NuGrid research platform. The impact of rate uncertainties of the most important production and destruction reactions was studied for a Supernova type II model. It could be shown that the light p-nuclei are mainly produced via neutron-dissociation reactions on heavier nuclei in the isotopic chains, and that the final abundances of these p-nuclei are determined by their main destruction reactions. The nucleosynthesis of 92Mo and 94Mo was also studied in different environments of a Supernova type Ia model. It was concluded that the maximum temperature and the duration of the high temperature phase determine the final abundances of 92Mo and 94Mo.
The production of quarkonia, the bound state of an heavy quark with its anti-particle, has for a long time been seen as a key process to understand the properties of nuclear matter in a relativistic heavy-ion collision. This thesis presents studies on the production of quarkonia in heavy-ion collisions at the new Large Hadron collider (LHC). The focus is set on the decay of J/Psi and Upsilon-states into their di-electronic decay channel, measured within the central detectors of the ALICE detector.