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Quantum chromodynamics (QCD) is the theory of the strong interaction between quarks and gluons. Due to Confinement, at lower energies quarks and gluons are bound into colorless states called hadrons. QCD is also asymptotically free, i.e. at large energies or densities it enters a deconfined state, termed quark-gluon plasma (QGP), where quarks and gluons are quasi-free. This transition occurs at an energy scale around 200 MeV where QCD cannot be treated perturbatively. Instead it can be formulated on a space-time grid. The resulting theory, lattice quantum chromodynamics (LQCD), can be simulated efficiently on high performance parallel-computing clusters. In recent years graphic processing units (GPUs), which outperform CPUs in terms of parallel-computing and memory bandwidth capabilities, became very popular for LQCD computations. In this work the QCD deconfinement transition is studied using CL2QCD, a LQCD application that runs efficiently on GPUs. Furthermore, CL2QCD is extended by a Rational Hybrid Monte Carlo algorithm for Wilson fermions to allow for simulations of an odd number of quark flavors.
Due to the sign-problem LQCD simulations are restricted to zero or very small baryon densities, where, in the limit of infinite quark mass QCD has a first order deconfinement phase transition associated to the breaking of the global centre symmetry. Including dynamical quarks breaks this symmetry explicitly. Lowering their mass weakens the first order transition until it terminates in a second order Z2 point. Beyond this point the transition is merely an analytic crossover. As the lattice spacing is decreased, the reduction of discretization errors causes the region of first order transitions to expand towards lower masses. In this work the deconfinement critical point with 2 and 3 flavors of standard Wilson fermions is studied. To this end several kappa values are simulated on temporal lattice extents 6,8,10 (4) for two flavors (three flavors) and various aspect ratios (spatial lattice extent / temporal lattice extent) so as to extrapolate to the thermodynamic limit, applying finite size scaling. For two flavors an estimate is done if and when a continuum extrapolation is possible.
The chiral and deconfinement phase transitions at zero density for light and heavy quarks, respectively, have analytic continuations to purely imaginary chemical potential, where no sign-problem exists and LQCD simulations can be applied. At some critical value of the imaginary chemical potential, the transitions meet the endpoint of the Roberge-Weiss transition between adjacent Z3 sectors. For light and heavy quarks the transition lines meet in a triple point, while for intermediate masses they meet in a second order point. At the boundary between these regimes the junction is a tricritical point, as shown in studies with two and three flavors of staggered and Wilson quarks on lattices with a temporal lattice extent of 4. Employing finite size scaling the nature of this point as a function of the quark mass is studied in this work for two flavors of Wilson fermions with a temporal lattice extent of 6. Of particular interest is the change of the location of tricritical points compared to an earlier study on lattices with temporal extent of 4.
The quasi-two-dimensional organic charge-transfer salt κ -(BEDT-TTF) 2 Cu 2 (CN) 3 is one of the prime candidates for a quantum spin-liquid due the strong spin frustration of its anisotropic triangular lattice in combination with its proximity to the Mott transition. Despite intensive investigations of the material’s low-temperature properties, several important questions remain to be answered. Particularly puzzling are the 6 K anomaly and the enigmatic effects observed in magnetic fields. Here we report on low-temperature measurements of lattice effects which were shown to be particularly strongly pronounced in this material (R. S. Manna et al., Phys. Rev. Lett. 2010, 104, 016403)). A special focus of our study lies on sample-to-sample variations of these effects and their implications on the interpretation of experimental data. By investigating overall nine single crystals from two different batches, we can state that there are considerable differences in the size of the second-order phase transition anomaly around 6 K, varying within a factor of 3. In addition, we find field-induced anomalies giving rise to pronounced features in the sample length for two out of these nine crystals for temperatures T< 9 K. We tentatively assign the latter effects to B-induced magnetic clusters suspected to nucleate around crystal imperfections. These B-induced effects are absent for the crystals where the 6 K anomaly is most strongly pronounced. The large lattice effects observed at 6 K are consistent with proposed pairing instabilities of fermionic excitations breaking the lattice symmetry. The strong sample-to-sample variation in the size of the phase transition anomaly suggests that the conversion of the fermions to bosons at the instability is only partial and to some extent influenced by not yet identified sample-specific parameters.
Für das bessere Verständnis der Nukleosynthese der schweren Elemente im s-Prozess wurde im Rahmen dieser Arbeit die Messung zur Bestimmung der Neutroneneinfangsreaktion von 83Kr durchgeführt. Als Messinstrument wurde DANCE am LANL verwendet, ein 4pi-Kalorimeter zur Detektion der entstehenden g-Kaskaden bei (n,g)-Reaktionen. Darüber hinaus wurden außerdem noch Proben mit 85Kr und 86Kr vermessen.
Die Herausforderung an diesem Experiment bestand vor allem in der Probenherstellung. Das Edelgas Kr erforderte eine Neukonstruktion der normalerweise bei DANCE verwendeten Probenhalterung. Das Hauptaugenmerk lag auf der Maximierung der Kr-Exposition durch den Neutronenstrahl. Im Gegenzug wurde versucht das umgebende Material nach Möglichkeit keinen Neutronen auszusetzen. Für die Isotope 83,86Kr wurden Hochdruckgaskugeln verwendet, die an der Goethe-Universität Frankfurt gefüllt und in eine der neuen Probenhalterungen eingesetzt wurden. Zur Beachtung des bei der Messung entstehenden Untergrundes wurde eine Messung mit baugleicher Probenhalterung und leerer Gaskugel durchgeführt. Da bereits kleine Mengen 85Kr eine hohe Radioaktivität aufweisen, wurde eine in einen Stahlzylinder eingeschweißte, existierende Quelle verwendet.
Bei der Analyse zu 86Kr wurde schnell eine zu starke Verunreinigung der Kr-Probe mit Xe offensichtlich, einen signifikanten Anteil des Spektrums ausmachte. Aus diesem Grund kam es vor allem zu Problemen den korrekten Untergrund von den 86Kr Messdaten zu subtrahieren. Die weitere Bestimmung inklusive Streukorrekturen, Normierung anhand des Flussmonitors und DICEBOX/GEANT3 Effizienzbestimmung lieferte zwar einen energieabhängigen Wirkungsquerschnitt, dieser zeigte allerdings große Abweichungen von den evaluierten ENDF/B-VII.1 Daten, was besonders ersichtlich in der deutlichsten 86Kr Resonanz bei 5515 eV zu erkennen war. Aus diesem Grund konnte aus den Messdaten kein MACS extrahiert werden.
Bei einer Untersuchung der Aktivität der 85Kr-Probe mit Hilfe der einzelnen BaF2-Detektoren in der DANCE Kugel zeigte sich zunächst eine um fast einen Faktor vier geringere Aktivität als vom Hersteller angegeben. Auch bei der weiteren Analyse traten massive Untergrundprobleme auf. Die Form des Stahlzylinders, in dem das Kr-Gasgemisch eingeschweißt war, konnte aufgrund seiner Form nur schwer im Strahlrohr untergebracht werden. Beim Experiment selbst zeigte sich dann, dass Teile der Halterung vom Neutronenstrahl getroffen wurden, was einen Untergrund mit sehr hohem Q-Wert erzeugte, der nicht durch ein Esum Fenster entfernt werden konnte. Durch eine Beschädigung der Halterung mit der Probe kam es darüber hinaus zu Abweichungen mit der verwendeten Leerhalterung. All das führte trotz einer langen Messzeit von fast 18 d dazu, dass nur ein sehr schwaches Signal von der eigentlichen Kr-Probe zu erkennen war. Es wurde eine mögliche 85Kr Resonanz bei 675 eV gefunden, allerdings ist die endgültige Zuordnung aufgrund der nicht eindeutigen Untergrundsituation äußerst schwierig. Im Vorfeld des Kr-Experimentes wurde eine Messung von RbCl an DANCE durchgeführt, da ursprünglich zu erwarten war, dass bereits ein Teil des 85Kr zu 85Rb zerfallen war. Durch diese Messung sollte dieser Anteil leicht von der späteren Messung zu subtrahieren sein. Allerdings trat ein unerwartetes Problem während der Datenaufnahme auf. Die Verbindung der DAQ Boards wurde getrennt, wodurch ca. 3/4 der Detektoren nicht mehr zeitsynchron liefen. Im Zuge dieser Arbeit wurde eine Rekonstruktion dieser Daten angestrebt. Durch Modifikationen am FARE Code, der zur Auswertung verwendet wurde, konnte Flugzeitspektren für jeden Beschleunigerpuls erzeugt werden. Es zeigte sich zunächst ein offensichtlicher Trend einer Verschiebung der getrennten Boards zu späteren Zeiten. Durch mehrere Fits an die Abweichungsverteilung und anschließende Korrektur konnte zunächst ein Spektrum wiederhergestellt werden, das vergleichbar mit den unbeschädigten Daten war. Bei einer detaillierten Analyse dieser neu gewonnen Daten zeigte sich jedoch eine Nichtlinearität in der Zeitverschiebung. Dies resultierte letztlich in einer Korrektur des Spektrums, allerdings nicht in einem Koinzidenzfenster von 10 ns, das für eine Wirkungsquerschnittsanalyse notwendig ist. Es wurde geschlussfolgert, dass durch die geringe Statistik in den einzelnen Flugzeitspektren solch eine Genauigkeit nicht zu erreichen ist.
Die Messung des Neutroneneinfangsquerschnitts von 83Kr konnte im Zuge dieser Arbeit erfolgreich durchgeführt werden. Es wurden zwei Messungen mit verschiedenen Strömen kombiniert. Eine Messung mit 40 µA wurde durchgeführt, um Pile-Up in der größten Resonanz bei 28 eV zu reduzieren. Die zweite Messung diente dann dem Sammeln von ausreichend Statistik in den nicht resonanten Bereichen. Die eingesetzte Leerkugel erlaubte eine saubere Subtraktion des Untergrundes von Probenhalterung, Gaskugel und Umgebung. Für die Skalierung der Messergebnisse wurde eine weitere Messung mit einer 5000 Å dicken Goldfolie durchgeführt. Zur Bestimmung der Detektoreffizienz konnten zunächst die durch den Neutroneneinfang entstandenen Abregungskaskaden der 84Kr Kerne mit DICEBOX modelliert werden. Diese Kaskaden wurden dann anschließend in GEANT3 Simulationen verwendet, um die Effizienz bestimmen zu können. Mit diesen Methoden erhielt man die Maxwell-gemittelten Wirkungsquerschnitte von kT = 5 keV - 100 keV. Bei der für den s-Prozess wichtigen Temperatur von kT = 30 keV wurde der Querschnitt bestimmt zu: MACS (30 keV) = (256,6 +- 14,2 (stat) +- 18,1(sys)) mb.
Dieser Wert ist in guter Übereinstimmung mit dem in der KADoNIS v0.3 Datenbank angegebenen Wert von MACS;KADoNIS (30 keV) = (243 +- 15) mb. Mit den so gewonnenen Wirkungsquerschnitten wurden außerdem die Reaktionsraten berechnet. Bei den anschließenden Netzwerkrechnungen mit dem Programm NETZ wurden die Auswirkungen der in dieser Arbeit gewonnenen Wirkungsquerschnitte im Vergleich zu den KADoNIS v0.3 Werten betrachtet. Dabei zeigte sich eine leicht erhöhte Produktion der stabilen Isotope 84Kr, 86Kr, 85Rb und 87Rb, sowie eine leichte Unterproduktion der stabilen Isotope 86-88Sr in der Hauptkomponente des s-Prozess. Ein ähnliches Bild zeigte sich in der He-Brennphase der schwachen Komponente. Der in dieser Arbeit gemessene Wirkungsquerschnitt bei hohen Temperaturen ist geringer als der in KADoNIS v0.3 angegebene, weswegen es bei der Simulation mit NETZ zu einer stark erhöhten Produktion von 83Kr in der C-Brennphase kommt.
Compact objects - black holes and neutron stars - are fascinating objects, not only for the astrophysicists, but for a wide range of researchers, including astronomers, theoretical physicists, particle and nuclear physicists, condensed matter physicists and arguably for the layman as well.
First theorized in the first part of the twentieth century, for a long time these objects have been considered just exotic ideas or mathematical curiosities. Pulsar were however detected in the late 1960s and readily identified as rotating, radiating neutron stars, while the first candidate black hole, Cygnus X-1, was observed in 1972. Since then the interest in these objects has steadily grown.
The reasons behind this interest are easily understood considering that compact object dwell at the intersection of many different areas of physics, and are ideal laboratories to explore the interplay between these areas.
Black holes, which are purely gravitational objects, are perfectly suited to study the nature of gravity, its manifestations such as gravitational waves, and the differences between various theories of gravity in the regime where they are expected to be most relevant, i.e. the strong field regime. However, just like any massive astrophysical object, black holes are interested by accretion phenomena, which are thought to be the power source of some very bright astrophysical emitters of electromagnetic signals, such as active galactic nuclei or X-ray binaries.
At the same time, black holes exist in a variety of different mass scales, from stellar mass to supermassive black holes billions of times heavier. The latter play a very important and yet not fully understood role in the formation and evolution of galaxies, as well as in shaping the large scale structure of the universe, making them relevant to cosmology as well.
Neutron stars share with black holes the characteristic of being gravitationally dominated systems; but because they are composed of baryon matter, they display a much richer behaviour. It has been realized early on that the matter in neutron star cores reaches extreme densities, exceeding the one in atomic nuclei. This means that neutron stars could provide invaluable information on the behaviour of matter in such extreme conditions (which are impossible to achieve in laboratory experiments), such as details of the nucleonic interaction, the properties of hyperons or of quark-gluon plasmas.
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The mission of the Compressed Baryonic Matter (CBM) experiment is to investigate the phase diagram of strongly interacting matter in the region of high net-baryon densities and moderate temperatures. According to various transport models, matter densities of more than 5 times saturation density can be reached in collisions between gold nuclei at beam energies between 5 and 11 GeV per nucleon, which will be available at FAIR. The core detector of the CBM experiment is the Silicon Tracking System (STS), which is used to measure the tracks of up to 700 particles per collision with high efficiency (>95%) and good momentum resolution (<1.5%). The technological and experimental challenge is to realize a detector system with very low material budget, in order to reduce multiple scattering of the particles, and a free-streaming data readout chain, in order to achieve reaction rates up to 10 MHz together with an online event reconstruction and selection.
The STS comprises 8 tracking stations positioned between 30 cm and 100 cm downstream the target inside a magnetic field, covering polar emission angles up to 25 degrees. A station consists of vertical structures with increasing number (between 8 and 16, depending on station number), each structure carrying between 2 and 10 double-sided microstrip silicon sensors, which are connected through low-mass microcables to the readout electronics placed at the detector periphery outside the active detector area.
The work presented in this thesis focuses on the detector performance simulation and local hit pattern reconstruction in the STS. For efficient detector design and reconstruction performance, a reliable detector response model is of utmost importance. Within this work, a realistic detector response model was designed and implemented in the CBM software framework. The model includes non-uniform energy loss of an incident particle within a sensor, electric field of a planar p-n junction, Lorentz shift of the charge carriers, their diffusion, and the influence of parasitic capacitances. The developed model has been verified with experimental data from detector tests in a relativistic proton beam. Cluster size distributions at different beam incident angles are sensitive to charge sharing effects and were chosen as an observable for the verification. Taking into account parasitic capacitances further improves the agreement with measured data.
Using the developed detector response model, the cluster position finding algorithm was improved. For two-strip clusters, a new, unbiased algorithm has been developed, which gives smaller residuals than the Centre-Of-Gravity algorithm. For larger clusters, the head-tail algorithm is used as the default one. For an estimate of the track parameters, the Kalman Filter based track fit requires not only hit positions but their uncertainties as an input. A new analytic method to estimate the hit position errors has been designed in this work. It requires as input neither measured spatial resolution nor information about an incident particle track. The method includes all the sources of uncertainties independently, namely: the cluster position finding algorithm itself, the non-uniform energy loss of incident particles, the electronics noise, and the discretisation of charge in the readout chip.
The verification with simulations shows improvements in hit and track pull distributions as well as x²-distributions in comparison to the previous simple approach. The analytic method improves the track parameters reconstruction by 5-10%.
Several STS module prototypes have been tested in a relativistic proton beam. A signal to-noise ratio was obtained at the level of 10-15 for modules made of 30 cm long microcable and of either one or two 6.2 x 6.2 cm² CiS sensors.
First simulations have shown that this signal-to-noise ratio is sufficient to reach the required efficiency and momentum resolution. The high-radiation environment of CBM operation will deteriorate the sensor performance. Radiation hardness of sensors has been studied in the beam with sensors irradiated to 2 x 10[hoch 14] 1MeV [neq/cm²], twice the lifetime dose expected for CBM operation. Charge collection efficiency drops by 17-25%, and simultaneously noise levels increase 1.5-1.75 times. The simulations show that if all sensors in the STS setup are exposed to such a fluence uniformly, the track reconstruction efficiency drops from 95.5% to 93.2% and the momentum resolution degrades from 1.6% to 1.7%.
We present a study of the influence of disorder on the Mott metal-insulator transition for the organic charge-transfer salt κ -(BEDT-TTF) 2 Cu[N(CN) 2 ]Cl. To this end, disorder was introduced into the system in a controlled way by exposing the single crystals to X-ray irradiation. The crystals were then fine-tuned across the Mott transition by the application of continuously controllable He-gas pressure at low temperatures. Measurements of the thermal expansion and resistance show that the first-order character of the Mott transition prevails for low irradiation doses achieved by irradiation times up to 100 h. For these crystals with a moderate degree of disorder, we find a first-order transition line which ends in a second-order critical endpoint, akin to the pristine crystals. Compared to the latter, however, we observe a significant reduction of both, the critical pressure pc and the critical temperature Tc . This result is consistent with the theoretically-predicted formation of a soft Coulomb gap in the presence of strong correlations and small disorder. Furthermore, we demonstrate, similar to the observation for the pristine sample, that the Mott transition after 50 h of irradiation is accompanied by sizable lattice effects, the critical behavior of which can be well described by mean-field theory. Our results demonstrate that the character of the Mott transition remains essentially unchanged at a low disorder level. However, after an irradiation time of 150 h, no clear signatures of a discontinuous metal-insulator transition could be revealed anymore. These results suggest that, above a certain disorder level, the metal-insulator transition becomes a smeared first-order transition with some residual hysteresis.
Most of the elements in the universe are produced via charged-particle fusion reactions during the primordial nucleosynthesis and different stellar burning stages, as well as via neutron-capture reactions. Around 35 heavy, proton-rich isotopes are bypassed by those reaction paths, the p nuclei. A series of photo-disintegration reactions occurring in supernovae, called the γ process, was suggested as a mechanisms to produce the p nuclei. Numerical simulations of the γ process have been unable to reproduce the observed abundances of the light p isotopes. Recent models showed that a series of proton capture reactions could provide the observed abundances. Hence, the cross sections of the crucial capture reactions have to be measured in order to test those assumptions.
Radiative proton captures in addition to the γ-process could reproduce the observed abundance pattern. This thesis presents preparations of a proton capture measurement on the radioactive 91Nb in standard kinematics with a calorimetric 4π setup. The 91Nb(p,γ)92Mo reaction might be the key to explain the production of one of the most abundant p-nuclei, 92Mo. So far, no experimental data for this reaction is available.
We produced a sample of 91Nb, with a half-life of 680 yr, at the Physikalisch Technische Bundesanstalt in Braunschweig, Germany, by irradiating 92Mo with protons in the energy range of 12 – 20MeV. 91Nb was produced via the reaction 92Mo(p,2p)91Nb and via 92Mo(p,pn)91Mo, where 91Mo decays to 91Nb with a half-life of 15.5min. To predict the amount of produced 91Nb the cross section of 92Mo(p, 2p) was measured. It was found to be higher than the value given by theoretical calculations with TALYS. Finally, 91Nb was chemically separated from the molybdenum carried at Paul-Scherrer- Institut, Villigen, Switzerland.
In-beam total absorption cross-section measurement of the reaction 91Nb(p,γ)92Mo with 2 MeV protons at FRANZ is planed with the produced 91Nb. A 4π BaF2 detector consisting of 41 crystals will be used. During this experiment we will measure the sum energy and the multiplicity of each event. The freshly produced 91Nb constitutes only a minor component of the sample material. The sum energy and multiplicity are crucial to distinguish the desired 91Nb(p,γ) from all the other more dominant reactions. The expected multiplicity and the efficiency of the setup were carefully simulated with DICEBOX and GEANT4. It was possible to show that background reactions can be effectively suppressed. The most important background contributions could be identified and result from 92Mo(p,γ), 19F(p,γ), and 19F(p,α).
A primordial state of matter consisting of free quarks and gluons that existed in the early universe a few microseconds after the Big Bang is also expected to form in high-energy heavy-ion collisions. Determining the equation of state (EoS) of such a primordial matter is the ultimate goal of high-energy heavy-ion experiments. Here we use supervised learning with a deep convolutional neural network to identify the EoS employed in the relativistic hydrodynamic simulations of heavy ion collisions. High-level correlations of particle spectra in transverse momentum and azimuthal angle learned by the network act as an effective EoS-meter in deciphering the nature of the phase transition in quantum chromodynamics. Such EoS-meter is model-independent and insensitive to other simulation inputs including the initial conditions for hydrodynamic simulations.