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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.
In den Neurowissenschaften führt die Erforschung des vegetativen Nervensystem (VNS) immer noch ein Schattendasein. Einer der wichtigsten Teile des VNS, der Hirnstamm, ist dabei besonders schlecht erforscht, obwohl er die Steuerzentren für Herzschlag, Blutdruckregulation, Atmung, Verdauung, und viele weitere lebenswichtige Funktionen beherbergt. Ein wichtiger Grund für diesen Umstand ist, dass die funktionelle Kernspintomographie (fMRT) sich in ihrer bisherigen Form nur bedingt für Messungen im Hirnstamm eignet. Ziel dieser Arbeit war es daher, neue Ansätze zur fMRT-Messung vegetativer Zentren im menschlichen Hirnstamm zu entwickeln. Nach einer Einführung in die Neuroanatomie sowie die physikalischen und physiologischen Grundlagen der strukturellen und funktionellen MRT werden im mittleren Teil der Arbeit die Entwicklung sowie der Test neuer Ansätze zur Hirnstamm-fMRT beschrieben. Dabei untersucht der Autor zunächst, welche grundlegenden Probleme einer konventionellen fMRT-Messung im Hirnstamm entgegenstehen. Es stellt sich heraus, dass alle hirnstamm-spezifischen Störquellen direkt oder indirekt auf den Herzschlag zurückzuführen sind. Aus den vorhandenen Ansätzen zur Korrektur solcher Störungen wird die Herzschlag-Taktung ausgewählt. Bei diesem Verfahren erfolgt die Aufnahme der fMRT-Bilder zeitlich gekoppelt an dem Herzschlag des Probanden, um sämtliche kardiogenen Rauschquellen zu unterdrücken. Anstelle des häufig verwendeten, aber statistisch problematischen Guimaraes-Verfahrens zur Korrektur der durch die Herzfrequenzvariabilität bedingten Schwankungen des MR-Signals wird in der vorliegenden Arbeit der die sog. Dual-Echo-Bildgebung verwendet. Dabei wird die konventionelle EPI-Sequenz (echo-planar imaging) dahingehend erweitert, dass pro Bild anstelle eines Echos zwei aufgenommen werden. Durch Quotientenbildung der beiden Bilder kann so der fluktuierende Teil des Signals entfernt werden. Beim Vergleich verschiedener Varianten der Quotientenbildung stellt sich ein neu entwickelter, exponentieller Ansatz als überlegen heraus. Danach werden die Auswirkungen verschiedener Methoden der Bewegungskorrektur und Schichtorientierung verglichen, um das Optimum für Messungen im Hirnstamm zu ermitteln. Nach Tests des neuen Verfahrens an verschiedenen fMRT-Datensätzen werden Empfehlungen für die Kombination der verschiedenen Parameter gegeben. Es zeigt sich, dass die Standardabweichung der fMRT-Bilder mit der neuen Methode im unteren Hirnstamm um 13% - 33% reduziert werden kann. Ein Sensitivitätstest an motorischen Hirnstammkernen, welche durch ein motorisches Paradigma aktiviert werden, zeigt, dass die jeweiligen Kerne in 85% - 95% der Fälle eindeutig identifiziert werden können. Im dritten Teil der Arbeit erfolgt die Anwendung der neuen Methode auf die Messung von Aktivierungen vegetativer Zentren. Hier wird als unkonventionellen Stimulus des vegetativen Nervensystems die Akupunktur verwendet. Dies geschieht u.a. mit der Zielsetzung, zur Aufdeckung des noch immer unbekannten Wirkmechanismus dieser Therapieform beizutragen. Als Akupunkturpunkt wird Pc6 am Handgelenk gewählt, da die Studienlage eindeutig dessen Effektivität bei der Behandlung von Übelkeit und Erbrechen sowie eine Beeinflussung der Magen-Peristaltik zeigt und die neuralen Zentren hierfür größtenteils im Hirnstamm lokalisiert sind. Der Autor stellt daher die Hypothese auf, dass die Akupunkturwirkung in diesem Fall über den Vagusnerv und dessen Hirnstammkern, den Nucleus dorsalis nervi vagi, vermittelt wird. Vor der Überprüfung dieser Hypothese erfolgt zunächst eine Methodenkritik der bisherigen Akupunktur-fMRT-Forschung. Anhand einer Gruppe von Studien, welche über Aktivierungen der Sehrinde bei Akupunktur visuell relevanter Punkte berichten, weist der Autor eine Reihe methodischer Probleme nach. Anhand einer eigenen Studie kann er mittels Independent Component Analysis (ICA) zeigen, dass die von den bisherigen Studien berichteten, visuellen Aktivierungen höchstwahrscheinlich nicht auf die Wirkung der Akupunktur zurückzuführen sind. Um einige der Probleme dieser Studien zu umgehen, entwickelt der Autor ein neues psychophysikalisches Verfahren, bei dem die Probanden während der Akupunktur kontinuierlich die Stärke der Nadelempfindung („DeQi“) auf einer visuellen Analogskala bewerten. Mit Hilfe dieses Verfahrens gelingt schließlich der Nachweis einer Hirnstamm-Aktivierung unter Akupunktur-Stimulation, deren Lokalisation mit der des Nucleus dorsalis nervi vagi vereinbar ist. Dies bestätigt die ursprüngliche Hypothese und zeigt gleichzeitig die Eignung des neuen Verfahrens für die Bildgebung vegetativer Hirnstammzentren.
Quantum entanglement plays a basic role in quantum information science. The creation of entanglement between qubits is of fundamental importance for further computation processing like quantum computation, quantum cryptography, quantum teleportation, quantum computers… We present here a symmetric electron-electron scattering experiment to determine the experimental parameters which are necessary to produce a source of entangled electrons. In this Moeller scattering experiment the electrons differ from each other only by their spin direction. At these conditions a spin entanglement of the scattered electrons is expected. To demonstrate the spin entanglement, a single particle resolved spin measurement of the electrons has to be performed. A high ratio of measured coincidences compare to random could be demonstrated. It is shown, that this ratio is related to an experiment depended nearly constant efficiency for the coincidence detection. In order to proof the spin entanglement, the goal is to measure the final polarization state of the electrons at different scattering directions to observe a spin anti correlation between these spin states of the Moeller electrons. The usual method to determine the electron polarization is based on an asymmetric scattering experiment with a high Z target. This scattering may yield an asymmetry due to a different spin-orbit coupling of the electrons. The main problem of polarized electron studies at keV-particle energy is the low efficiency of usual spin polarimeters. This low efficiency impedes or prevents electron spin resolved coincidence measurements because of necessarily induced random coincidences. To enhance the efficiency of the spin detection, a new compact mini-Mott spin analyzer has been developed. Due to a compact small size of this analyzer, a higher efficiency is obtained now, which is a prerequisite to the electron spin resolved coincidence measurements. Till date, the asymmetry measurement have been performed where one Mott analyzer rotated by an angle around the axis. The reducing asymmetry is in agreement with a prediction of quantum mechanic; however, the large systematic errors of the measurement have been estimated. As a next step for investigation of spin entanglement it is planned to increase the overall efficiency of the experiment by having higher initial energy and minimize error of the measurement by applying new kind of detectors.
This thesis investigates the jet-medium interactions in a Quark-Gluon Plasma using a hydrodynamical model. Such a Quark-Gluon Plasma represents a very early stage of our universe and is assumed to be created in heavy-ion collisions. Its properties are subject of current research. Since the comparison of measured data to model calculations suggests that the Quark-Gluon Plasma behaves like a nearly perfect liquid, the medium created in a heavy-ion collision can be described applying hydrodynamical simulations. One of the crucial questions in this context is if highly energetic particles (so-called jets), which are produced at the beginning of the collision and traverse the formed medium, may lead to the creation of a Mach cone. Such a Mach cone is always expected to develop if a jet moves with a velocity larger than the speed of sound relative to the medium. In that case, the measured angular particle distributions are supposed to exhibit a characteristic structure allowing for direct conclusions about the Equation of State and in particular about the speed of sound of the medium. Several different scenarios of jet energy loss are examined (the exact form of which is not known from first principles) and different mechanisms of energy and momentum loss are analyzed, ranging from weak interactions (based on calculations from perturbative Quantum Chromodynamics, pQCD) to strong interactions (formulated using the Anti-de-Sitter/Conformal Field Theory Correspondence, AdS/CFT). Though they result in different angular particle correlations which could in principle allow to distinguish the underlying processes (if it becomes possible to analyze single-jet events), it is shown that the characteristic structure observed in experimental data can be obtained due to the different contributions of several possible jet trajectories through an expanding medium. Such a structure cannot directly be connected to the Equation of State. In this context, the impact of a strong flow created behind the jet is examined which is common to almost all jet deposition scenarios. Besides that, the transport equations for dissipative hydrodynamics are discussed which are fundamental for any numerical computation of viscous effects in a Quark-Gluon Plasma.
Neutron stars are very dense objects. One teaspoon of their material would have a mass of five billion tons. Their gravitational force is so strong that if an object were to fall from just one meter high it would hit the surface of the respective neutron star at two thousand kilometers per second. In such dense bodies, different particles from the ones present in atomic nuclei, the nucleons, can exist. These particles can be hyperons, that contain non-zero strangeness, or broader resonances. There can also be different states of matter inside neutron stars, such as meson condensates and if the density is height enough to deconfine the nucleons, quark matter. As new degrees of freedom appear in the system, different aspects of matter have to be taken into account. The most important of them being the restoration of the chiral symmetry. This symmetry is spontaneously broken, which is a fact related to the presence of a condensate of scalar quark-antiquark pairs, that for this reason is called chiral condensate. This condensate is present at low densities and even in vacuum. It is important to remember at this point that the modern concept of vacuum is far away from emptiness. It is full of virtual particles that are constantly created and annihilated, being their existence allowed by the uncertainty principle. At very high temperature/density, when the composite particles are dissolved into constituents, the chiral consensate vanishes and the chiral symmetry is restored. To explain how and when chiral symmetry is restored in neutron stars we use a model called non-linear sigma model. This is an effective quantum relativistic model that was developed in order to describe systems of hadrons interacting via meson exchange. The model was constructed from symmetry relations, which allow it to be chiral invariant. The first consequence of this invariance is that there are no bare mass terms in the lagrangian density, causing all, or most of the particles masses to come from the interactions with the medium. There are still other interesting features in neutron stars that cannot be found anywhere else in nature. One of them is the high isospin asymmetry. In a normal nucleus, the amount of protons and neutrons is more or less the same. In a neutron star the amount of neutrons is much higher than the protons. The resulting extra energy (called Fermi energy) increases the energy of the system, allowing the star to support more mass against gravitational collapse. As a consequence of that in early stages of the neutron star evolution, when there are still many trapped neutrinos, the proton fraction is higher than in later stages and consequently the maximum mass that the star can support against gravity is smaller. This, between many other features, shows how the microscopic phenomena of the star can reflect into the macroscopic properties. Another important property of neutron stars is charge neutrality. It is a required assumption for stability in neutron stars, but there are others. One example is chemical equilibrium. It means that the number of particles from each kind is not conserved, but they are created and annihilated through specific reactions that happen at the same rate in both directions. Although to calculate microscopic physics of neutron stars the space-time of special relativity, the Minkowski space, can be used, this is not true for the global properties of the star. In this case general relativity has to be used. The solution of Einstein's equations simplified to static, spherical and isotropic stars correspond to the configurations in which the star is in hydrostatic equilibrium. That means that the internal pressure, coming mainly from the Fermi energy of the neutrons, balances the gravity avoiding the collapse. When rotation is included the star becomes more stable, and consequently, can be more massive. The movement also makes it non-spherical, what requires the metric of the star to also be a function of the polar coordinate. Another important feature that has to be taken into account is the dragging of the local inertial frame. It generates centrifugal forces that are not originated in interactions with other bodies, but from the non-rotation of the frame of reference within which observations are made. These modifications are introduced through the Hartle's approximation that solves the problem by applying perturbation theory. In the mean field approximation, the couplings as well as the parameters of the non-linear sigma model are calibrated to reproduce massive neutron stars. The introduction of new degrees of freedom decreases the maximum mass allowed for the neutron star, as they soften the equation of state. In practice, the only baryons present in the star besides the nucleons are the Lambda and Sigma-, in the case in which the baryon octet is included, and Lambda and Delta-,0,+,++, in the case in which the baryon decuplet is included. The leptons are included to ensure charge neutrality. We choose to proceed our calculations including the baryon octet but not the decuplet, in order to avoid uncertainties in the couplings. The couplings of the hyperons were fitted to the depth of their potentials in nuclei. In this case the chiral symmetry restoration can be observed through the behavior of the related order parameter. The symmetry begins to be restored inside neutron stars and the transition is a smooth crossover. Different stages of the neutron star cooling are reproduced taking into account trapped neutrinos, finite temperature and entropy. Finite-temperature calculations include the heat bath of hadronic quasiparticles within the grand canonical potential of the system. Different schemes are considered, with constant temperature, metric dependent temperature and constant entropy. The neutrino chemical potential is introduced by fixing the lepton number in the system, that also controls the amount of electrons and protons (for charge neutrality). The balance between these two features is delicate and influenced mainly by the baryon number conservation. Isolated stars have a fixed number of baryons, which creates a link between different stages of the cooling. The maximum masses allowed in each stage of the cooling process, the one with high entropy and trapped neutrinos, the deleptonized one with high entropy, and the cold one in beta equilibrium. The cooling process is also influenced by constraints related to the rotation of the star. When rotation is included the star becomes more stable, and consequently, can be more massive. The movement also deforms it, requiring the metric of the star to include modifications that are introduced through the use of perturbation theory. The analysis of the first stages of the neutron star, when it is called proto-neutron star, gives certain constraints on the possible rotation frequencies in the colder stages. Instability windows are calculated in which the star can be stable during certain stages but collapses into black holes during the cooling process. In the last part of the work the hadronic SU(3) model is extended to include quark degrees of freedom. A new effective potential to the order parameter for deconfinement, the Polyakov loop, makes the connection between the physics at low chemical potential and hight temperature of the QCD phase diagram with the height chemical potential and low temperature part. This is done through the introduction of a chemical potential dependency on the already temperature dependent potential. Analyzing the effect of both order parameters, the chiral condensate and the Polyakov loop, we can drawn a phase diagram for symmetric as well as for star matter. The diagram contains a crossover region as well as a first order phase transition line. The new couplings and parameters of the model are chosen mainly to fit lattice QCD, including the position of the critical point. Finally, this matter containing different degrees of freedom (depending on which phase of the diagram we are) is used to calculate hybrid star properties.
Kaon and pion production in centrality selected minimum bias Pb+Pb collisions at 40 and 158A GeV
(2009)
Results on charged kaon and negatively charged pion production and spectra for centrality selected Pb+Pb mininimum bias events at 40 and 158A GeV have been presented in this thesis. All analysis are based on data taken by the NA49 experiment at the accelerator Super Proton Synchrotron (SPS) at the European Organization for Nuclear Research (CERN) in Geneva, Switzerland. The kaon results are based on an analysis of the mean energy loss <dE/dx> of the charged particles traversing the detector gas of the time projection chambers (TPCs). The pion results are from an analysis of all negatively charged particles h- corrected for contributions from particle decays and secondary interactions. For the dE/dx analysis of charged kaons, main TPC tracks with a total momentum between 4 and 50 GeV have been analyzed in logarithmic momentum log(p) and transverse momentum pt bins. The resulting dE/dx spectra have been fitted by the sum of 5 Gaussians, one for each main particle type (electrons, pions, kaons, protons, deuterons). The amplitude of the Gaussian used for the kaon part of the spectra has been corrected for efficiency and acceptance and the binning has been transformed to rapidity y and transverse momentum pt bins. The multiplicity dN/dy of the single rapidity bins has been derived by summing the measured range of the transverse momentum spectra and an extrapolation to full coverage with a single exponential function fitted to the measured range. The results have been combined with the mid-rapidity measurements from the time-of-flight detectors and a double Gaussian fit to the dN/dy spectra has been used for extrapolation to rapidity outside of the acceptance of the dE/dx analysis. For the h- analysis of negatively charged pions, all negatively charged tracks have been analyzed. The background from secondary reactions, particle decays, and gamma-conversions has been corrected with the VENUS event generator. The results were also corrected for efficiency and acceptance and the pt spectra were analyzed and extrapolated where necessary to derive the mean yield per rapidity bin dN/dy. The mean multiplicity <pi-> has been derived by summing up the measured dN/dy and extrapolating the rapidity spectrum with a double Gaussian fit to 4pi coverage. The results have been discussed in detail and compared to various model calculations. Microscopical models like URQMD and HSD do not describe the full complexity of Pb+Pb collisions. Especially the production of the positively charged kaons, which carry the major part of strange quarks, cannot be consistently reproduced by the model calculations. Centrality selected minimum bias Pb+Pb collisions can be described as a mixture of a high-density region of multiply colliding nucleons (core) and practically independent nucleon-nucleon collisions (corona). This leads to a smooth evolution from peripheral to central collisions. A more detailed approach derives the ensemble volume from a percolation of elementary clusters. In the percolation model all clusters are formed from coalescing strings that are assumed to decay statistically with the volume dependence of canonical strangeness suppression. The percolation model describes the measured data for top SPS and RHIC energies. At 40A GeV, the system size dependence of the relative strangeness production starts to evolve from the saturation seen at higher energies from peripheral events onwards towards a linear dependence at SIS and AGS. This change of the dependence on system size occurs in the energy region of the observed maximum of the K+ to pi ratio for central Pb+Pb collisions. Future measurements with heavy ion beam energies around this maximum at RHIC and FAIR as well as the upgraded NA49 successor experiment NA61 will further improve our understanding of quark matter and its reflection in modern heavy ion physics and theories.
Breitbandige Beamforming-Algorithmen zur Erfassung von Audiosignalen mit kompakten Mikrofon-Arrays
(2009)
Mikrofon-Arrays erlauben die selektive Erfassung und Trennung von Audiosignalen aus einer akustischen Umgebung. Typische Anwendungen sind z.B. die Ortung einzelner Schallquellen, die räumliche Kartierung eines Schallfeldes ("akustische Kamera") oder der gerichtete Empfang einer bestimmten Schallquelle bei gleichzeitiger Unterdrückung von Umgebungs- oder Störschallen. Vielkanalige Verfahren und Filter, die sich dieser Aufgabe widmen, werden als Beamforming bzw. Beamformer bezeichnet. In dieser Dissertation werden bekannte und eigene Beamforming-Ansätze im Hinblick auf ihre Eignung für die hochwertige Übertragung von Audiosignalen untersucht. Diese erfordert neben einer möglichst großen Abdeckung des relevanten Frequenzbereichs (Breitbandigkeit) auch die Frequenzunabhängigkeit der Richtcharakteristik, um spektrale Verzerrungen zu vermeiden. Es wird ein Algorithmus vorgestellt, der diese Anforderungen mit sehr kompakten Arrays erfüllt. Eine klassische Möglichkeit, eine frequenzinvariante Charakteristik (Beampattern) mithilfe eines Delay-and-Sum-Beamformers zu erhalten, ist eine frequenzabhängige Gewichtung der Mikrofone, welche die effektive Apertur des Arrays proportional zur Schallwellenlänge einstellt. Diese Methode funktioniert jedoch nur bei Wellenlängen, die kleiner sind als die Ausdehnung des Arrays, und erfordert bei Frequenzen unter 100Hz Arrays von mehreren Metern Größe. Ein gänzlich anderes Verhalten zeigen differentielle Mikrofonarrays, welche Differenzen aus Signalen benachbarter Mikrofone bilden: In Kombination mit Integratorfiltern erzeugen sie Beampattern, die auch bei sehr kleinen Frequenzen, d.h. bei Wellenlängen, die groß gegen das Array sind, unverändert bleiben (sog. Superdirektivität). Aus diesem Prinzip wurde in dieser Arbeit das Konzept des Multipol-Beamformers entwickelt, der ein gegebenes Soll-Beampattern durch eine Reihenentwicklung nach Sinus- und Kosinusfunktionen (zweidimensionaler Fall) oder Kugelflächenfunktionen (dreidimensionaler Fall) approximiert. Der Multipol-Beamformer erzielt eine hervorragende Richtwirkung bei kleinen Frequenzen, ist jedoch nur über einen sehr begrenzten Bereich frequenzinvariant und erweist sich insbesondere in drei Raumdimensionen als analytisch aufwändig. Flexibler und in zwei wie in drei Raumdimensionen gleichermaßen einfach in der Formulierung ist demgegenüber das in der Literatur zu findende Verfahren des modalen Subraum-Beamformings (Modal Subspace Decomposition, MSD). Dieser Ansatz bestimmt zu einer beliebigen Sensorgeometrie einen Satz orthogonaler Eigen-Beampattern, die dann zu einer Reihenentwicklung des Soll-Beampatterns herangezogen werden. Ähnlich dem erwähnten Delay-and-Sum-Beamformer jedoch erfordert auch dieser Ansatz bei großen Wellenlängen entsprechend groß dimensionierte Arrays und ist nicht superdirektiv. In dieser Arbeit wurde deshalb eine eigene, neue Ausprägung des MSD-Algorithmus formuliert, welche die Superdirektivität des Multipol-Beamformers mit der Flexibilität und Einfachheit des MSD-Verfahrens vereint. Diese als "superdirektives MSD-Beamforming" bezeichnete Methode besitzt - wie das bereits bekannte MSD-Verfahren auch - die interessante Eigenschaft, daß die Eigen-Beampattern für ein frei zu wählendes Entwurfs-Frequenzband berechnet werden, so daß das Verhalten des Beamformers über ein ganzes Frequenzintervall kontrolliert werden kann. Dies eröffnet auch die Möglichkeit eines sehr breitbandigen Beamformings durch Kombination mehrerer Beamformer, die individuell auf benachbarte Frequenzbänder abgestimmt werden. Mit beispielsweise einem hexagonalen Array von nur 6cm Durchmesser und sieben Mikrofonen erreicht der superdirektive Ansatz so ca. 20-30dB Störabstand über einen Frequenzbereich von 100Hz bis 6kHz, was für Sprache eine sehr hohe Übertragungsqualität darstellt. Zur experimentellen Verifikation der untersuchten Algorithmen wurde im Rahmen dieser Arbeit eine vielkanalige Echtzeit-Signalverarbeitungsumgebung unter Windows XP erstellt, welche die Erfassung, Verarbeitung, Analyse und Ausgabe vielkanaliger Audio-Daten erlaubt. Auch eine Simulation idealer Freifeldmessungen an Mikrofonarrays ist damit möglich, indem die Ausbreitung des Schalls von der Schallquelle zu den Mikrofonen durch zeitdiskrete Fractional-Delay-Filter simuliert wird. Dieser Filtertypus wurden im Rahmen dieser Arbeit ebenfalls eingehend untersucht: Für zwei aus der Literatur bekannte Entwurfsverfahren wurden Erweiterungen gefunden, die bei gleicher Filterordnung eine höhere nutzbare Bandbreite erzielen. Für Messungen an realen Arrays wurde die Akustik-Messkammer des Instituts durch zusätzliche Dämmauskleidung für Freifeld-Messungen nutzbar gemacht. Die Messergebnisse belegen, daß die untersuchten Algorithmen in der Praxis erwartungsgemäß funktionieren und daß der gefundene superdirektive MSD-Algorithmus mit sehr kompakten Arrays eine gute breitbandige Erfassung und Trennung von Audiosignalen ermöglicht.
In this thesis, we studied the single impurity Anderson model and developed a new and fast impurity solver for the dynamical mean field theory (DMFT). Using this new impurity solver, we studied the Hubbard model and periodic Anderson model for various parameters. This work is motivated by the fact that the dynamical mean field theory is widely used for the studies of strongly correlated systems, and the most frequently used methods, e.g. the quantum Monte-Carlo method (QMC), and the exact digonalization method are much CPU time consuming and usually limited by the available computers. Therefore, a fast and reliable impurity solver is needed. This new impurity solver was explored based on the equation-of-motion method (also called Green's function and decoupling method in some literature). Using the retarded Green's function, we first derived the equations of motion of Green's functions. Then, we employed a decoupling scheme to close the equations. By solving self-consistently the obtained closed set of integral equations, we obtained the single particle Green's function for the single impurity Anderson model. After that, the single impurity Anderson model was solved along with self-consistency conditions within the framework of DMFT. In this work, we studied and compared two decoupling schemes. Moreover, we also derived possible higher order approximations which will be tested in future work. Besides the theoretical work, we tested the method in numerical calculations. The integral equations are first solved by iterative methods with linear mixing and Broyden mixing, respectively. However, these two methods are not sufficient for finding the self-consistent solutions of the DMFT equations because converged results are difficult to obtain. Moreover, the computing speed of the two methods is also not satisfactory. Especially the iterative method with linear mixing costs always a lot of CPU time due to the required small mixing. Hence, we developed a new method, which is a combination of genetic algorithm and iterative method. This new method converges very fast and removes artifacts appearing in the results from the iterative method with linear and Broyden mixing. It can directly operate on the real axis, where no numerical error from the high frequency tail corrections and the analytical continuation is introduced. In addition, our new technique strongly improves the precision of the numerical results by removing the broadening. With this newly developed impurity solver and numerical technique, we studied the single impurity Anderson model, the single band Hubbard model and the periodic Anderson model with arbitrary spin and orbital degeneracy N on the real axis. For the single impurity Anderson model, the spectral functions are calculated for the infinite and finite Coulomb interaction strength. We also studied the spectral functions in dependence of the parameters of impurity position and hybridization. For the Hubbard model, we studied the bandwidth control and filling control Mott metal-insulator transition for spin and orbital degeneracy N = 2. It gives qualitatively the critical value of Coulomb interaction strength for the Mott metal-insulator transition, and the spectral functions which are comparable to those obtained in QMC and numerical renormalization group methods. We also studied the quasiparticle weight and the self-energy in metallic states. The latter shows almost Fermi liquid behavior. At last we calculated the densities of states for the Hubbard model with arbitrary spin and orbital degeneracy N. The periodic Anderson model (PAM) is also studied as another important lattice model. It was solved for various combinations of parameters: the Coulomb interaction strength, the impurity position, the center position of the conduction band, the hybridization, the spin and orbital degeneracy. The PAM results represents the physics of impurities in a metal. In short, our method works for the Hubbard model and the periodic Anderson model in a large range of parameters, and gives good results. Therefore, our impurity solver could be very useful in calculations within LDA+DMFT. Finally, we also made a preliminary investigation of the multi-band system based on the success in single band case. We first studied the two-band system in a simplified treatment by neglecting the interaction between the two bands through the bath. This has given promising numerical results for the two-band Hubbard model. Moreover, we have studied theoretically the two-band system with mean field approximation and Hubbard-I approximation in dealing with the higher order cross Green's functions which are related to both the two bands. In the mean field approximation, we even generalized the two-band system to arbitrary M=N/2 band system. Potential improvement can be carried out on the basis of this work.
The study of the electromagnetic structure of hadrons plays an important role in understanding the nature of matter. In particular the emission of lepton pairs out of the hot and dense collision zone in heavy-ion reactions is a promising probe to investigate in-medium properties of hadrons and in general the properties of matter under such extreme conditions. The first experimental observation of an enhanced di-electron yield in the invariant-mass region 0:3 - 0:7 GeV/c2 in p+Be collisions at 4:9 GeV/u beam energy [2] was announced by the DLS collaboration [1]. Recent results of the HADES collaboration show a moderate enhancement above n Dalitz decay contributions for 12C+12C at 1 and 2 GeV/u [3, 4] confirming the DLS results. There are several theoretical explanations of this observation, most of them focusing on possible in-medium modifications of the properties of vector mesons. At low beam energies the question whether the observed excess is related to any in-medium effects remains open because of uncertainties in the description of elementary di-electron sources. In this work the di-electron production in p+p and d+p reactions at a kinetic beam energy of 1:25 GeV/u measured by the HADES spectrometer is discussed. At Ekin = 1:25 GeV/u, i.e. below the n meson production threshold in proton-proton reactions, the delta Dalitz decay is expected to be the most abundant source above the pi 0 Dalitz decay region. The observed large difference in di-electron production in p+p and d+p collisions suggests that di-electron production in the d+p system is dominated by the n+p interaction. In order to separate delta Dalitz decays and np bremsstrahlung the di-electron yield observed in p+p and n+p reactions, both measured at the same beam energy, has been compared. The main interest here is the investigation of iso-spin effects in baryonic resonance excitations and the off-shell production of vector mesons [5]. We indeed observe a large difference in di-electron production in p+p and n+p reactions. Results of these studies will be compared to recent calculations. We will also present our experimentally defined cocktail for heavy-ion data. At much higher beam energies experimental results of the CERES [6] and NA60 [7] collaborations also show an enhancement in the invariant mass region 0:3 - 0:7 GeV/c2, in principle similar to the situation in DLS. A strong excess of lepton pairs observed by recent high energy heavy-ion dilepton experiments hint to a strong influence of baryons, however no data exist at highly compressed baryonic matter, achievable in heavy-ion collisions from 8 - 45 GeV/u beam energy. These conditions would allow to study the expected restoration of chiral symmetry by measuring in-medium modifications of hadronic properties, an experimental program which is foreseen by the future CBM experiment at FAIR. The experimental challenge is to suppress the large physical background on the one hand and to provide a clean identification of electrons on the other hand. In this work, strategies to reduce the combinatorial background in electron pair measurements with the CBM detector are discussed. The main goal is to study the feasibility of effectively reducing combinatorial background with the currently foreseen experimental setup, which does not provide electron identification in front of the magnetic field.
In this work we study the properties of quarkonium states in a quark-gluon plasma which, due to expansion and non-zero viscosity, exhibits a local anisotropy in momentum space. We determine the hard-loop resummed gluon propagator in an anisotropic QCD plasma in general linear gauges and define a potential between heavy quarks from the Fourier transform of its static limit. This potential which arises due to one-gluon exchange describes the force between a quark and anti-quark at short distances. It is closer to the vacuum potential as compared to the isotropic Debye screened potential which indicates the reduced screening in an anisotropic QCD plasma. In addition, angular dependence appears in the potential; we find that there is stronger attraction on distance scales on the order of the inverse Debye mass for quark pairs aligned along the direction of anisotropy than for transverse alignment. The potential at long distances, however, is non-perturbative and modeled as a QCD string which is screened at the same scale as the Coulomb field. At asymptotic separation the potential energy is non-zero and inversely proportional to the temperature. With a phenomenological potential model which incorporates the different behaviors at short and long distances, we solve the three-dimensional Schrödinger equation. Our numerical results show that quarkonium binding is stronger at non-vanishing viscosity and expansion rate, and that the anisotropy leads to polarization of the P-wave states. Furthermore, we determine viscosity corrections to the imaginary part of the heavyquark potential in the weak-coupling hard-loop approximation. The imaginary part is found to be smaller (in magnitude) than at vanishing viscosity. This implies a smaller decay width of quarkonium bound states in an anisotropic plasma.