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Quasi-zweidimensionale organischen Ladungstransfersalze weisen gewisse Analogien zu den Hochtemperatur-Kupratsupraleitern (HTSL) auf. Zu nennen ist einerseits der ähnliche schichtartige Aufbau, wobei sich leitfähige und isolierende Ebenen abwechseln. Zum anderen liegt der antiferromagnetische Grundzustand in direkter Nachbarschaft zur Supraleitung und bei höheren Temperaturen wird ebenfalls die Entstehung einer Pseudo-Energielücke diskutiert. Im Gegensatz zu den HTSL können die elektronischen Eigenschaften der organischen Ladungstransfersalze jedoch leicht durch äußere Parameter wie hydrostatischen bzw. chemischen Druck - die Verwendung verschiedener Anionen X läßt sich in einem verallgemeinerten Phasendiagramm ebenfalls auf die Achse W/U abbilden, siehe Abschn. 4.2 - oder moderate Temperaturen beeinflußt werden. In den quasi-zweidimensionalen K-(BEDT-TTF)2X-Salzen ist bspw. ein moderater Druck p ~ 250 bar ausreichend, um das antiferromagnetisch-isolierende System (X=Cu[N(CN)2]Cl) auf die metallische Seite des Phasendiagramms zu verschieben, wobei dann im Grundzustand Supraleitung auftritt (Tc ~ 12,8 K). Eine Dotierung wie bei den HTSL und die damit einhergehende unerwünschte Unordnung ist nicht notwendig um einen Isolator-Metall-übergang zu induzieren. Demnach sind die experimentellen Anforderungen im Vergleich zu anderen stark korrelierten Elektronensystemen auf relativ einfache Weise zu realisieren. Auch das macht die organischen Ladungstransfersalze zu idealen Modellsystemen, um fundamentale Konzepte der theoretischen Festkörperphysik zu studieren, wovon einige bislang lediglich von akademischem Interesse waren. Erstmalig wird in dieser Arbeit die Fluktuationsspektroskopie als experimentelle Methode angewendet, um die Dynamik des TT-Elektronensystems in den quasi-zweidimensionalen organischen Ladungstransfersalzen K-(BEDT-TTF)2X bei niedrigen Frequenzen zu studieren. Ziel ist es, Informationen über die Temperatur-, Druck- und Magnetfeld-Abhängigkeit der spektralen Leistungsdichte des Widerstandsrauschens und damit über die Dynamik der Ladungsfluktuationen zu gewinnen. Insbesondere in der Nähe korrelationsgetriebener Ordnungsphänomene spielt die Dynamik der Ladungsträger eine entscheidende Rolle. Auch die Kopplung des elektronischen Systems an bestimmte strukturelle Anregungen hat Einfluß auf das Widerstandsrauschen. Zu Beginn wird eine kurze Einführung in die Signalanalyse gegeben und daran anschließend werden verschiedene Arten des Rauschens in Festkörpern dargestellt (Kap. 1). Einige der für diese Arbeit relevanten Ordnungsphänomene werden in Kap. 2 in knapper Form eingeführt, wobei auf die dynamischen Eigenschaften in der Nähe eines Glasübergangs etwas ausführlicher eingegangen wird. Nach der Vorstellung der eingesetzten Meßmethoden, des Versuchsaufbaus und der Probenkontaktierung (Kap. 3) werden die experimentellen Ergebnisse an den K-(BEDT-TTF)2X-Salzen in Kap. 4 ausführlich diskutiert.
In the next years the Facility for Antiproton and Ion Research FAIR will be constructed at the GSI Helmholtzzentrum fur Schwerionenforschung in Darmstadt, Germany. This new accelerator complex will allow for unprecedented and pathbreaking research in hadronic, nuclear, and atomic physics as well as in applied sciences. This manuscript will discuss some of these research opportunities, with a focus on few-body physics.
The energy dependence of the local and violation in Au+Au and Cu+Cu collisions in a large energy range is estimated within a simple phenomenological model. It is expected that at LHC the chiral magnetic effect will be about 20 times weaker than at RHIC. At lower energy range, covered by the low-energy scan at RHIC and future NICA/FAIR facilities, the created magnetic field strength and energy density of deconfined matter are rather high providing necessary conditions for the chiral magnetic effect. However, the particular model for the chiral magnetic effect predicts that this effect should vanish sharply at energy somewhere above the top SPS one. To elucidate CME background effects the Hadron-String-Dynamics (HSD) transport model including electromagnetic fields is put forward. Importance of new planning experiments at LHC and for the low-energy RHIC scan program is emphasized.
Effects of nuclear orientation on fusion and fission in the reaction using 238U target nucleus
(2010)
Fission fragment mass distributions in the reaction of 30Si+238U were measured around the Coulomb barrier. At the above-barrier energies, the mass distribution showed a Gaussian shape. At the subbarrier energies, triple-humped distribution was observed, which consists of symmetric fission and asymmetric fission peaked at AL/AH ~ 90/178. The asymmetric fission should be attributed to quasifission from the results of the measured evaporation residue (ER) cross-sections for 30Si+238U. The cross-section for 263Sg at the abovebarrier energy agree with the statistical model calculation which assumes that the measured fission cross-section originates from fusion-fission, whereas the one for 264 Sg measured at the sub-barrier energy is smaller than the calculation, which suggests the presence of quasifission.
The mass-dependent structure of the composite nucleus is shown based on three-dimensional timedependent Hartree-Fock calculations with Skyrme interactions (SLy4d and SkM*). One remarkable result is that the isovector monopole excitation dominantly appears for collisions of heavy nuclei, and the isovector dipole excitation for those of light ones. Such a difference found in the dynamical structure of composite nucleus plays a role in the equilibration of charge.
We derive the equations of second order dissipative fluid dynamics from the relativistic Boltzmann equation following the method of W. Israel and J. M. Stewart [1]. We present a frame independent calculation of all first- and second-order terms and their coefficients using a linearised collision integral. Therefore, we restore all terms that were previously neglected in the original papers of W. Israel and J. M. Stewart.
We present results on Hanbury Brown-Twiss (HBT) radii extracted from the Ultra-relativistic Molecular Dynamics (UrQMD) approach to relativistic heavy ion collisions. The present investigation provides a comparison of results from pure hadronic transport calculations to a Boltzmann + Hydrodynamic hybrid approach with an intermediate hydrodynamic phase. For the hydrodynamic phase different Equations of State (EoS) have been employed, i.e. bag model, hadron resonance gas and a chiral EoS. The influence of various freeze-out scenarios has been investigated and shown to be negligible if hadronic rescatterings after the hydrodynamic evolution are included. Furthermore, first results of the source tilt from azimuthal sensitive HBT and the direct extraction from the transport model are presented and exhibit a very good agreement with E895 data at AGS.
A mechanism for locally density-dependent dynamic parton rearrangement and fusion has been implemented into the Ultrarelativistic Quantum Molecular Dynamics (UrQMD) approach. The same mechanism has been previously built in the Quark Gluon String Model (QGSM). This rearrangement and fusion approach based on parton coalescence ideas enables the description of multi-particle interactions, namely 3 -> 3 and 3 -> 2, between (pre)hadronic states in addition to standard binary interactions. The UrQMD model (v2.3) extended by these additional processes allows to investigate implications of multi-particle interactions on the reaction dynamics of ultrarelativistic heavy ion collisions. The mechanism, its implementation and first results of this investigation are presented and discussed.
We present the current status of hybrid approaches to describe heavy ion collisions and their future challenges and perspectives. First we present a hybrid model combining a Boltzmann transport model of hadronic degrees of freedom in the initial and final state with an optional hydrodynamic evolution during the dense and hot phase. Second, we present a recent extension of the hydrodynamical model to include fluctuations near the phase transition by coupling a chiral field to the hydrodynamic evolution.