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Institute
- Physik (4259) (remove)
In the framework of the relativistic quantum dynamics approach we investigate antiproton observables in Au-Au collisions at 10.7A GeV. The rapidity dependence of the in-plane directed transverse momentum p(y) of p's shows the opposite sigh of the nucleon flow, which has indeed recently been discovered at 10.7A GeV by the E877 group. The "antiflow" of p's is also predicted at 2A GeV and at 160 A GeV and appears at all energies also for pi's and K's. These predicted p anticorrelations are a direct proof of strong p annihilation in massive heavy ion reactions.
Die Reform der Lehrerausbildung spielt in der aktuellen bildungspolitischen Diskussion eine wichtige Rolle. In der Auseinandersetzung um fachdidaktische Ausbildungsstandards und Kerncurricula werden von den Studierenden, neben fachlichen Fähigkeiten, Reflexions-, Kommunikations- und unterrichtsbezogene Handlungskompetenzen gefordert. In der Physik-lehrerausbildung der universitären Phase müssen Lernumgebungen zur Schulung dieser Kom-petenzen häufig erst noch geschaffen werden. Aus diesem Grund wird seit dem Wintersemester 2002/03 der Universität Frankfurt/M. eine Seminarreihe mit dem Charakter einer Lernwerkstatt angeboten, in der die Studierenden selbstorganisiert Unterrichtsmaterialien entwickeln. Von den Zielen, der Durchführung und den Ergebnissen dieses Projekts wird berichtet und ein Seminarkonzept in Kombination mit den schulpraktischen Studien vorgestellt.
Mit der vorliegenden Arbeit ist der eindeutige experimentelle Nachweis für die Existenz eines 1997 [Ced97] vorhergesagten, neuartigen Zerfallskanals für Van-der-Waals-gebundene Systeme erbracht worden. Die Untersuchungen wurden an einem Neondimer durchgeführt. Erzeugt man in einem Atom dieses Dimers durch Synchrotronstrahlung eine 2s-Vakanz, so wird diese durch ein 2p-Elektron aufgefüllt. Die hierbei freiwerdende Energie wird an das zweite Atom des Dimers in Form eines virtuellen Photons übertragen und löst dort ein Elektron aus einer äußeren Schale. Untersucht wurde dieser Zerfall namens „Interatomic Coulombic Decay” (ICD) durch Koinzidenzimpulsspektroskopie (COLTRIMS) [Doe00, Ull03, Jah04b]. Der Nachweis der Existenz des Effekts erfolgte dadurch, dass die Summe der Energien der Photofragmente - und im Speziellen des ICD-Elektrons und der beiden im Zerfall entstehenden Ne+-Ionen - eine Konstante ist. Durch die koinzidente Messung der Impulse, der im Zerfall entstehenden Teilchen, konnte hierdurch ICD eindeutig identifiziert werden. Die Übereinstimmung der gemessenen Energiespektren mit aktuellen theoretischen Vorhersagen [Sche04b, Jah04c] ist exzellent. Dadurch, dass das Dimer nach dem IC-Zerfall in einer Coulomb-Explosion fragmentiert, konnten des Weiteren Untersuchungen, wie sie in den letzten Jahren an einfachen Molekülen durchgeführt wurden [Web01, Lan02, Jah02, Web03b, Osi03b, Jah04a], auch am Neondimer erfolgen: Durch die Messung der Ausbreitungsrichtung der ionischen Fragmente des Dimers nach der Coulomb-Explosion wird die räumliche Ausrichtung des Dimers zum Zeitpunkt der Photoionisation bestimmt. Die gemessenen Impulse der emittierten Elektronen können dadurch im Bezug zur Dimerachse dargestellt werden. In dieser Arbeit wurden somit Messungen der Winkelverteilung der 2s-Photoelektronen und des ICD-Elektrons im laborfesten und auch dimerfesten Bezugssystem vorgestellt und mit vorhandenen theoretischen Vorhersagen verglichen. Die Winkelverteilung des Photoelektrons ähnelt stark der Verteilung, die man nach der Photoionisation eines einzelnen Neonatoms erhält und hat somit fast reinen Dipolcharakter. Die Präsenz des zweiten Atoms des Dimers verursacht nur leichte Modulationen, so dass auch die Änderung der Ausrichtung der Dimerachse im Bezug zur Polarisationsrichtung des linear polarisierten Lichtes nur geringe Auswirkungen hat. Durch die koinzidente Messung aller vier nach der Photoionisation entstehenden Teilchen konnte außerdem ein weiterer Doppelionisationsmechanismus des Dimers nachgewiesen werden: Ähnlich wie in einzelnen Atomen [Sam90] gibt es auch in Clustern den TS1-Prozess. Hierbei wird ein 2p-Elektron aus dem einen Atom des Dimers herausgelöst. Es streut dann an einem 2p-Elektron des anderen Atoms, das hierdurch ionisiert wird. Diese etwas andere Form des TS1 im Cluster ist also genau wie ICD ein interatomarer Vorgang. Die Summe der Energien der beiden, in diesem Prozess entstehenden Elektronen hat einen festen Wert von h... − 2 · IP(2p) − KER = 12 eV, so dass dieser Prozess hierdurch im Experiment gefunden werden konnte. Die gemessenen Zwischenwinkel zwischen den beiden Elektronen zeigen des Weiteren genau die für zwei sich abstoßende Teilchen typische Verteilung einer Gauss-Kurve mit einem Maximum bei 180 Grad. Da im Falle von interatomarem TS1 die Potentialkurve der Coulomb-Explosion direkt aus dem Grundzustand populiert wird, konnte im Rahmen der „Reflexion Approximation” die Wahrscheinlichkeitsverteilung der Abstände der beiden Dimeratome experimentell visualisiert werden. Das Betragsquadrat des Kernanteils der Dimergrundzustandswellenfunktion wurde somit direkt vermessen. Die Messungen wurden bei drei verschiedenen Photonenenergien durchgeführt, um die Ergebnisse weiter abzusichern und robuster gegen eventuelle systematische Fehler zu machen. Da kein isotopenreines Neongas im Experiment eingesetzt wurde, konnten genauso Ionisations- und ICD-Ereignisse von isotopischen Dimeren (20Ne22Ne) beobachtet und ausgewertet werden. Die gemessenen Spektren sind innerhalb der Messtoleranzen identisch zu denen für 20Ne2.
We study the time scale for pressure equilibration in heavy ion collisions at AGS energies within the three-fluid hydrodynamical model and a microscopic cascade model (UrQMD). We find that kinetic equilibrium is reached in both models after a time of 5 fm/c (center-of-mass time). Thus, observables which are sensitive to the early stage of the reaction differ considerably from the expectations within the instant thermalization scenario (one-fluid hydrodynamical model).
Abstract: We study transverse expansion and directed flow in Au(11AGeV)Au reactions within a multi-fluid dynamical model. Although we do not employ an equation of state (EoS) with a first order phase transition, we find a slow increase of the transverse velocities of the nucleons with time. A similar behaviour can be observed for the directed nucleon flow. This is due to non-equilibrium e ects which also lead to less and slower conversion of longitudinal into transverse momentum. We also show that the proton rapidity distribution at CERN energies, as calculated within this model, agrees well with the preliminary NA44-data.
The study of (anti-)deuteron production in pp collisions has proven to be a powerful tool to investigate the formation mechanism of loosely bound states in high-energy hadronic collisions. In this paper the production of (anti-)deuterons is studied as a function of the charged particle multiplicity in inelastic pp collisions at s√=13 TeV using the ALICE experiment. Thanks to the large number of accumulated minimum bias events, it has been possible to measure (anti-)deuteron production in pp collisions up to the same charged particle multiplicity (dNch/dη∼26) as measured in p–Pb collisions at similar centre-of-mass energies. Within the uncertainties, the deuteron yield in pp collisions resembles the one in p–Pb interactions, suggesting a common formation mechanism behind the production of light nuclei in hadronic interactions. In this context the measurements are compared with the expectations of coalescence and statistical hadronisation models (SHM).
The study of (anti-)deuteron production in pp collisions has proven to be a powerful tool to investigate the formation mechanism of loosely bound states in high energy hadronic collisions. In this paper the production of (anti-)deuterons is studied as a function of the charged particle multiplicity in inelastic pp collisions at s√=13 TeV using the ALICE experiment. Thanks to the large number of accumulated minimum bias events, it has been possible to measure (anti-)deuteron production in pp collisions up to the same charged particle multiplicity (dNch/dη∼26) as measured in p-Pb collisions at similar centre-of-mass energies. Within the uncertainties, the deuteron yield in pp collisions resembles the one in p-Pb interactions, suggesting a common formation mechanism behind the production of light nuclei in hadronic interactions. In this context the measurements are compared with the expectations of coalescence and Statistical Hadronisation Models (SHM).
The study of (anti-)deuteron production in pp collisions has proven to be a powerful tool to investigate the formation mechanism of loosely bound states in high energy hadronic collisions. In this paper the production of (anti-)deuterons is studied as a function of the charged particle multiplicity in inelastic pp collisions at s√=13 TeV using the ALICE experiment. Thanks to the large accumulated integrated luminosity, it has been possible to measure (anti-)deuteron production in pp collisions up to the same charged particle multiplicity (dNch/dη∼26) as measured in p-Pb collisions at similar centre-of-mass energies. Within the uncertainties, the deuteron yield in pp collisions resembles the one in p-Pb interactions, suggesting a common formation mechanism behind the production of light nuclei in hadronic interactions. In this context the measurements are compared with the expectations of coalescence and Statistical Hadronisation Models (SHM).
The ALICE detector is ideally suited to study the production of anti- and hyper-matter due to its excellent particle identification capabilities. The measurement of the He¯4-nucleus in Pb–Pb collisons at sNN=2.76TeV is presented. We further show the performance for the reconstruction of the (anti-)hypertriton in the decay to He3+π− (He¯3+π+). In addition to this, two searches have been performed, one for the H-Dibaryon →Λpπ− and one for the Λn bound state (Λn¯→d¯π+). No signals are observed for these exotic states and upper limits have been determined.
We discuss deviations from the exponential decay law which occur when going beyond the BreitWigner distribution for an unstable state. In particular, we concentrate on an oscillating behavior, remisiscent of the Rabi-oscillations, in the short-time region. We propose that these oscillations can explain the socalled GSI anomaly, which measured superimposed oscillations on top of the exponential law for hydrogen-like nuclides decaying via electron-capture. Moreover, we discuss the possibility that the deviations from the Breit-Wigner in the case of the GSI anomaly are (predominantely) caused by the interaction of the unstable state with the measurement apparatus. The consequences of this scenario, such as the non-observation of oscillations in an analogous experiment perfromed at Berkley, are investigated.