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Compact stars can be treated as the ultimate laboratories for testing theories of dense matter. They are not only extremely dense objects, but they are known to be associated with strong magnetic fields, fast rotation and, in certain cases, with very high temperatures. Here, we present several different approaches to model numerically the signatures and properties of these stars, namely:
•The effects of strong magnetic fields on hybrid stars by using a fully general relativistic approach. We solved the coupled Maxwell-Einstein equations in a self-consistent way, taking into consideration the anisotropy of the energy-momentum tensor due purely to the magnetic field, magnetic field effects on equation of state and the interaction between matter and the magnetic field (magnetization). We showed that the effects of the magnetization and the magnetic field on the equation of state for matter do not play an important role on global properties of neutron stars (only the pure magnetic _eld contribution does). In addition, the magnetic field breaks the spherical symmetry of stars, inducing major changes in the populated degrees of freedom inside these objects and, potentially, converting a hybrid star into a hadronic star over time.
•The effects of magnetic fields and rotation on the structure and composition of proto-neutron stars. We found that the magnetic field not only deforms these stars, but also significantly alters the number of trapped neutrinos in the stellar interior, together with the strangeness content and temperature in each evolution stage from a hot proto-neutron star to a cold neutron star.
•The influence of the quark-hadron phase transitions in neutron stars. In particular, previous calculations have shown that fast rotating neutron stars, when subjected to a quark-hadron phase transition in their interiors, could give rise to the backbending phenomenon characterized by a spin-up era. In this work, we obtained the interesting backbending phenomenon for fast spinning neutron stars. More importantly, we showed that a magnetic field, which is assumed to be axisymmetric and poloidal, can also be enhanced due to the phase transition from normal hadronic matter to quark matter on highly magnetized neutron stars. Therefore, in parallel to the spin-up era, classes of neutron stars endowed with strong magnetic fields may go through a `magnetic-up era' in their lives.
•Finally, we were also able to calculate super-heavy white dwarfs in the presence of strong magnetic fields. White dwarfs are the progenitors of supernova Type Ia explosions and they are widely used as candles to show that the Universe is expanding and accelerating. However, observations of ultraluminous supernovae have suggested that the progenitor of such an explosion should be a white dwarf with mass above the well-known Chandrasekhar limit ~ 1.4 M. In corroboration with other works, but by using a fully general relativistic framework, we obtained also strongly magnetized white dwarfs with masses M ~ 2:0 M.
The term superconductivity describes the phenomenon of vanishing electrical resistivity in a certain material, then called a superconductor, below a critical typically very low temperature. Since the discovery of superconductivity in mercury in 1911 many other superconductors have been found and the critical temperature below which superconductivity occurs could recently be raised to the temperatures encountered in a cold antarctic winter.
Superconductors are promising materials for applications. They can serve as nearly loss-free cables for energy transmission, in coils for the generation of high magnetic fields or in various electronic devices, such as detectors for magnetic fields. Despite their obvious advantages, the cost for using superconductors, however, depends a lot on the cooling effort needed to realize the superconducting state. Therefore, the search for a superconductor with critical temperature above room-temperature, which would avoid the need for any specialized cooling system, is one of the main projects of contemporary research in condensed matter physics.
While a theory of superconductivity in simple metals has already been developed in the 1950s, it has meanwhile been recognized that many superconductors are unconventional in the sense that their behavior does not follow the aforementioned theory. Unconventional superconductors differ from conventional superconductors mainly by the momentum- and real-space symmetry of the order parameter, which is associated with the superconducting state. While conventional superconductors have a uniform order parameter, unconventional superconductors can have an order parameter that bears structure. Of course, alternative theoretical descriptions have been suggested, but the discussion on the right theory for unconventional superconductivity has not yet been settled. Ultimately, this lack of a general theory of superconductivity prevents a targeted search for the room-temperature superconductor. Any new theoretical approach must, however, prove its value by correctly predicting the structure of the superconducting order parameter and further material properties.
In this work we participate in the search for a theory of unconventional superconductivity. We discuss the theory of superconductivity mediated by electron-electron interactions, which has been popular in the last few decades due to its success in explaining various properties of the copper-based superconductors that emerged in the 1980s. We give a detailed derivation of the so-called random phase approximation for the Hubbard model in terms of a diagrammatic many-body theory and apply it in conjunction with low-energy kinetic Hamiltonians, which we construct from first principles calculations in the framework of density functional theory. Density functional theory is an established technique for calculating the electronic and magnetic properties of materials solely based on their crystal structure. Its practical implementations in computer codes, however, do for example not describe complicated many-electron phenomena like the superconducting state that we are interested in here. Nevertheless, it can provide important information about the properties of the normal state of the material, which superconductivity emerges from. In our theory we use these information and approach the superconducting state from the normal state.
Such an interfacing of different calculational techniques requires a lot of implementation work in the form of computer code. Inclusion of the computer code into this work would consume by far too much space, but since some of the decisions on approximations in the calculational formalism are guided by the feasibility of the associated computer calculations, we discuss the numerical implementation in great detail.
We apply the developed methods to quasi-two-dimensional organic charge transfer salts and iron-based superconductors. Finally, we discuss implications of our findings for the interpretation of various experiments.
Expression, perception and recognition of intense emotions in healthy and depressed individuals
(2017)
Die Fähigkeit die Gefühle anderer zu erkennen und einzuordnen ermöglicht es soziale Situationen richtig einzuschätzen und soziale Beziehungen aufzubauen. Da Emotionen also in unserem Leben eine wichtige Rolle spielen, kann eine Dysregulation der Emotionsverarbeitung auch zu elementaren Einschränkungen führen. Menschen, die unter depressiven Episoden leiden, durchleben beispielsweise regelmäßig Phasen intensiver und anhaltender Traurigkeit. Jedoch ist noch nicht vollständig erklärt, wie es zu dieser verzerrten Emotionswahrnehmung kommt. Diese Dissertation hatte deshalb das Ziel, den Ausdruck, die Wahrnehmung und das Erkennen extremer Emotionen genauer zu beleuchten.
In Studie 1 wurden der Ausdruck und das Erkennen extremer Emotionen untersucht.
Hierbei dienten aus dem Internet bezogene Videosequenzen von Kindern und Erwachsenen als Basis, in denen diese sich in Situationen befanden, die sie extrem negative oder extrem positive Emotionen durchleben ließen. Die Gesichtsausdrücke der Kinder und Erwachsenen wurden dann zum Zeitpunkt der stärksten emotionalen Erregung in ein Bild umgewandelt und von unabhängigen Ratern auf ihre Valenz und ihr Arousal eingeschätzt. Es wurde beobachtet, dass - entgegen der Vorhersage etablierter Emotionstheorien (z.B. Ekman, 1993) – Emotionen hoher positiver und negativer Intensität schwer auseinander zu halten sind. Tatsächlich wurden positive Emotionsausdrücke häufig als negativ eingeschätzt. Eine mögliche Erklärung dafür liefern Aragón und Kollegen (2015). Sie schätzen den Ausdruck negativer Emotionen in positiven Situationen als Emotionsregulationsstrategie ein, die dazu dient ein emotionales Equilibrium wieder herzustellen, das durch die überwältigenden positiven Emotionen aus dem Gleichgewicht gebracht wurde.
In Studie 2 und 3 wurde die Wahrnehmung negativer Emotionen bei depressiven Menschen im Vergleich zu gesunden Kontrollprobanden auf subjektiver und physiologischer Ebene untersucht. Hierbei wurde zunächst im Rahmen von Studie 2 untersucht, ob Parameter des autonomen Nervensystems (ANS) sich zwischen depressiven und gesunden Probanden unterscheiden. ANS-Parameter umfassten Hormone (Cortisol und DHEA), Herzratenvariabilität (HRV), Hautleitfähigkeit (GSR), Hauttemperatur (TEMP) und Atemfrequenz (RSP). Es konnten erhöhte DHEA-Werte, eine erhöhte Hauttemperatur und eine reduzierte Atemfrequenz in der Patientengruppe gefunden werden. Eine erhöhte Hauttemperatur korrelierte zudem mit der Ausprägung depressiver Symptome und der aktuellen Stimmung. Reduzierte HRV-Werte wurden hauptsächlich auf antidepressive Medikation zurückgeführt.
In Studie 3 wurde dann die Reaktion der Probanden auf emotionsevozierende Stimuli verschiedener Valenzkategorien (neutral, leicht negative, hoch negative) untersucht. Hierbei wurden sowohl physiologische Parameter (TEMP, HRV, GSR, RSP) als auch die subjektive Einschätzung der Stimuli bezüglich ihrer Valenz und ihres Arousal erhoben. Die Befunde bezüglich Hauttemperatur und HRV-Werte aus Studie 2 konnten in Studie 3 repliziert
werden. Zudem zeigte sich eine akzentuierte Reaktion der RSP sowie höhere Valenz- und Arousalratings in der Patientengruppe. Das subjektiv intensivere Empfinden der Stimuli bei den Patienten hing zusätzlich mit emotionaler und sozialer Kompetenz zusammen.
In dieser Dissertation konnte gezeigt werden, dass Ausdrücke intensiver Emotionen im Gesicht oft als zweideutig wahrgenommen werden. Um ein genaueres Verständnis der Emotionswahrnehmung bei depressiven Menschen zu erlangen, konnten zudem mehrere Parameter des ANS identifiziert werden, die teils noch nicht untersucht wurden und einer intensiveren Emotionswahrnehmung bei depressiven Patienten zugrunde liegen könnten.
Hierbei wurden zusätzlich Zusammenhänge zu weiteren Aspekten der Depression, wie Defiziten in sozialen Kompetenzen, aufgezeigt. Damit gibt diese Dissertation umfassende Aufschlüsse über Emotionsverarbeitungsprozesse bei gesunden und depressiven Menschen.
In den vergangen Jahren wurde erkannt, dass eine Quantenfeldtheorie (QFT) namens Quantenchromodynamik (QCD) die richtige Theorie der starken Wechselwirkungen ist. QCD beschreibt erfolgreich die starken Wechselwirkungen, die Quarks zu Nukleonen und Nukleonen zu Atomkernen zusammenbinden. Jedoch ist die theoretische Beschreibung vieler Phänomene der starken Wechselwirkung aufgrund des starken Kopplungsverhaltens bei niedrigen Energien schwierig. Stoßexperimente mit Schwerionen sind ein möglicher Weg, um die charakteristischen Phänomene und Eigenschaften der QCD-Materie zu untersuchen. In Stoßexperimenten mit Schwerionen werden schwere (d.h. große) Atomkerne aufeinander geschossen, beispielsweise Gold (am RHIC) oder Blei (am CERN, LHC), mit einer ultrarelativistischen Energie √s im Schwerpunktsystem. Auf diese Art ist es möglich, eine große Menge von Materie mit hoher Energiedichte hervorzubringen. Das Ziel von Schwerionenkollisionen ist die Erzeugung und Charakterisierung einer makroskopischen Phase von freien Quarks und Gluonen im lokalen thermischen Gleichgewicht. Ein solcher Aggregatzustand kann neue Informationen über das QCD-Phasendiagramm und den QCD-Phasenübergang liefern. Man nimmt an, dass ein solcher Übergang stattfand, als sich die Materie des frühen Universums von einem Plasma aus Quarks und Gluonen (QGP) in ein Gas von Hadronen umwandelte...
The elliptic flow of heavy-flavour decay electrons is measured at midrapidity |eta| < 0.8 in three centrality classes (0-10%, 10-20% and 20-40%) of Pb-Pb collisions at sqrt(sNN) = 2.76TeV with ALICE at LHC. The collective motion of the particles inside the medium which is created in the heavy-ion collisions can be analyzed by a Fourier decomposition of the azimuthal anisotropic particle distribution with respect to the event plane. Elliptic flow is the component of the collective motion characterized by the second harmonic moment of this decomposition. It is a direct consequence of the initial geometry of the collision which is translated to a particle number anisotropy due to the strong interactions inside the medium. The amount of elliptic flow of low-momentum heavy quarks is related to their thermalization with the medium, while high-momentum heavy quarks provide a way to assess the path-length dependence of the energy loss induced by the interaction with the medium.
The heavy-quark elliptic flow is measured using a three-step procedure.
First the v2 coefficient of the inclusive electrons is measured using the event-plane and scalar-product methods. The electron background from light flavours and direct photons is then simulated, calculating the decay kinematics of the electron sources which are initialised by their respective measured spectra. The final result of this work emerges by subtracting the background from the inclusive measurement. A significant elliptic flow is observed after this subtraction. Its value is decreasing from low to intermediate pT and from semi-central to central collisions.
The results are described by model calculations with significant elastic interactions of the heavy quarks with the expanding strongly-interacting medium.
At sufficiently high temperatures and baryon densities, nuclear matter is expected to undergo a transition into the Quark-Gluon-Plasma (QGP) consisting of deconfined quarks and gluons and accompanied by chiral symmetry restoration. Signals of these two fundamental characteristics of Quantum-Chromo-Dynamics (QCD) can be studied in ultra-relativistic heavy-ion collisions producing a relatively large volume of high energy and nucleon densities as existent in the early universe. Dileptons are unique bulk-penetrating sources for this purpose since they penetrate through the surrounding medium with negligible interaction and are created throughout the entire evolution of the initially created fireball. A multitude of experiments at SIS18, SPS and RHIC have taken on the challenging task to measure these rare probes in a heavy-ion environment. NA60's results from high-quality dimuon measurements have identified the broadened ρ spectral function as favorable scenario to explain the low-mass dilepton excess, and partonic sources as dominant at intermediate dilepton masses.
Enabled by the addition of a TOF detector system in 2010, the first phase of the Beam Energy Scan (BES-I) at RHIC allows STAR to conduct an unprecedented energy-dependent study of dielectron production within a homogeneous experimental environment, and hence close the wide gap in the QCD phase diagram between SPS and top RHIC energies. This thesis concentrates on the understanding of the LMR enhancement regarding its invariant mass, transverse momentum and energy dependence. It studies dielectron production in Au+Au collisions at beam energies of 19.6, 27, 39, and 62.4 GeV with sufficient statistics. In conjunction with the published STAR results at top RHIC energy, this thesis presents results on the first comprehensive energy-dependent study of dielectron production.
This includes invariant mass- and transverse momenta-spectra for the four beam energies measured in 0-80% minimum-bias Au+Au collisions with high statistics up to 3.5 GeV/c² and 2.2 GeV/c, respectively. Their comparison with cocktail simulations of hadronic sources reveals a sizeable and steadily increasing excess yield in the LMR at all beam energies. The scenario of broadened in-medium ρ spectral functions proves to not only serve well as dominating underlying source but also to be universal in nature since it quantitatively and qualitatively explains the LMR enhancements measured over the wide range from SPS to top RHIC energies. It shows that most of the enhancement is governed by interactions of the ρ meson with thermal resonance excitations in the late(r)-stage hot and dense hadronic phase. This conclusion is supported by the energy-dependent measurement of integrated LMR excess yields and enhancement factors. The former do not exhibit a strong dependence on beam energy as expected from the approximately constant total baryon density above 20 GeV, and the latter show agreement with the CERES measurement at SPS energy. The consistency in excess yields and agreement with model calculations over the wide RHIC energy regime makes a strong case for LMR enhancements on the order of a factor 2-3.
The extent of the results presented here enables a more solid discussion of its relation to chiral symmetry restoration from a theoretical point of view. High-statistics measurements at BES-II hold the promise to confirm these conclusions along with the LMR enhancment's relation to total baryon density with decreasing beam energy.
The venture capital industry holds relevance for entrepreneurs looking for money to finance an innovative project, investors seeking to make money by investing in entrepreneurial firms and governments trying to promote innovation and entrepreneurship. Venture capital investment could facilitate innovation and thus a better economy.
Venture capital has enabled the U.S. to support its entrepreneurial talent by turning ideas into world-famous products and services, building companies from mere business plans to mature and powerful organizations. Three of the five largest U.S. public companies by market capitalization – Apple, Google and Microsoft – received most of their early external funding from venture capital. Having its ups and downs, venture capital investment in the U.S. expanded from virtually zero in the mid-1970s to $8 billion in 1995 and $49.3 billion in 2014. Venture backed companies have been a prime driver of economic growth in the U.S.Across the pacific, venture capital investment in China has grown out of the transition from a centrally planned economy to a free market economy over the past three decades, becoming an important pillar supporting China’s innovation system. In 2015, a total of 2,824 venture capital investment deals provided an aggregate investment of $36.9 billion. Venture capital has long been a hot topic in China’s capital market, particularly since the government decided to boost “mass entrepreneurship and innovation” in 2014.
In the U.S., most venture capital firms are organized as limited partnerships, with the venture capitalists being general partners and the investors limited partners. Studies have shown that investors choose to invest through venture funds as an intermediary rather than placing their investments directly with the entrepreneurs; because of the high risk nature of the entrepreneur’s business, it is hard for them to get bank loans or direct equity investments. Conflicts may also arise, however, between the venture capitalists acting as agents and the investors as principals.5 This agency problem maybe particularly severe, since venture capital provides money for businesses with high potential and high risk, although the limited partnership has certain merits and is still most commonly chosen as the business form for venture capital funds.6 At the same time, the fact that general partners have total control of the partnership business necessitates that the agency problem is addressed by legal rules, contracts and other mechanisms.
Meanwhile, despite the rapid growth of venture capital investments in China, little attention has been paid to the organizational form of venture capital funds. In contrast to the U.S., most Chinese venture funds have been structured as corporations. One may argue that it was due to legislative reasons: that the limited partnership was not recognized by Chinese law when venture capital first appeared in China. However, after adopted a chapter was adopted in the Partnership Enterprise Law (PEL) governing limited partnerships in 2007, most of the venture funds abided by their choice, while those opting for the limited partnership have encountered difficulties: the limited partners are having trouble trusting the general partners with their money and are therefore interfering with the operation of the partnership business, which may lead to dissolution of the partnership.
This thesis applies transaction cost theory to explain the benefits and costs of choosing the limited partnership as a business form in the special context of venture capital investments, showing that the potential agency conflict between the general partners and the limited partners have been mitigated by legal and other mechanismsin the United States, and that the U.S. investors could therefore exploit the merit of the limited partnership form in venture capital financing. In China, investors have different answers to the agency problem. Similarly to the situation in the U.S., Chinese partners also employ contract terms to deal with agency problems, and the legislators enact laws that aim at regulating the limited partnership form; some legislation was even transplanted from the U.S., such as that part of the PEL which governs limited partnerships. It seems, then, that similar mechanisms that deal with agency problems also exist in China. However, given the unique history of the development of China’s innovation system and venture capital market, the effectiveness of these constraints is questionable. Chinese venture capital investors have therefore characteristically behaved differently to U.S. investors. Rather than relying on these questionable mechanisms, Chinese investors as well as the Chinese government have developed different approaches to addressing these agency problems.
In this thesis we study strongly correlated electron systems within the Density Functional Theory (DFT) in combination with the Dynamical Mean-Field Theory (DMFT).
First, we give an introduction into the theoretical methods and then apply them to study realistic materials. We present results on the hole-doped 122-family of the iron-based superconductors and the transition-metal oxide SrVO3. Our investigations show that a proper treatment of strong electronic correlations is necessary to describe the experimental observations.
The humanized non-depleting anti-CD4 monoclonal antibody Tregalizumab (BT-061) is able to selectively activate the suppressive function of regulatory T cells and has been investigated up to phase 2b in clinical trials in patients suffering from rheumatoid arthritis (RA).
A pharmacokinetic-pharmacodynamic model, which is based on clinical data from RA and healthy subjects, used the cell surface CD4-down-modulation as marker of the antibodies' activity. This model surprisingly revealed a stronger effect of Tregalizumab in healthy subjects compared to RA patients. This thesis presents a series of experiments performed to understand this phenomenon.
To counteract oxidative stress, which is strongly associated with RA pathophysiology, the organism employs the small oxidoreductase thioredoxin-1 (Trx1). Therefore, augmented expression and secretion of Trx1 was seen in many studies the synovial fluid and plasma of RA patients. Moreover, the binding site of Tregalizumab is in close proximity to a disulfide bond in domain 2 (D2) of CD4, which is a known target for a reduction by Trx1. So, this thesis also evaluated the influence of Trx1 on binding of Tregalizumab to its target CD4.
With the experiments reported herein, it was possible to demonstrate that specific reduction of the D2 disulfide bond of CD4 by Trx1 led to diminished binding of Tregalizumab to recombinant human soluble CD4 (rh sCD4) and membrane-bound CD4 on T cells from a human leukemia cell line and peripheral blood mononuclear cells (PBMC). Moreover, the experiments revealed that this caused changes in the Tregalizumab-induced CD4 signalling pathway via the lymphocyte-specific protein tyrosine kinase p56Lck.
In summary, this thesis provides evidence that high Trx1 levels in RA patients compared to healthy subjects are a potential valid reason for diminished binding of Tregalizumab to CD4-positive T cells and offers an explanation for the observed decreased CD4 down-modulation in RA patients in comparison with healthy subjects. It emphasizes that binding of Tregalizumab is impaired in a particular way in RA patients.