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In dieser Arbeit wurden Untersuchungen zur Einstellung und Analyse des Sauerstoffgehalts an YBa2Cu3O6+x-Dünnfilmen durchgeführt. Zur Analyse des Sauerstoffgehalts wurde ein optisches Verfahren angewendet. Durch Messung der Transmission un der Reflektion in einem Spektralbereich von 2000nm bis 3000nm wird mit Hilfe des im Rahmen dieser Arbeit erstellten Markov-Modells die optische Leitfähigkeit bestimmt. Aus den gewonnen Werten der optischen Leitfähigkeit kann so auf den Sauerstoffgehalt in YBa2Cu3O6+x geschlossen werden.
We introduce a transport approach which combines partonic and hadronic degrees of freedom on an equal footing and discuss the resulting reaction dynamics. The initial parton dynamics is modeled in the framework of the parton cascade model, hadronization is performed via a cluster hadronization model and configuration space coalescence, and the hadronic phase is described by a microscopic hadronic transport approach. The resulting reaction dynamics indicates a strong influence of hadronic rescattering on the space-time pattern of hadronic freeze-out and on the shape of transverse mass spectra. Freeze-out times and transverse radii increase by factors of 2 3 depending on the hadron species.
Report-no: UFTP-492/1999 Journal-ref: Phys.Rev. C61 (2000) 024909 We investigate flow in semi-peripheral nuclear collisions at AGS and SPS energies within macroscopic as well as microscopic transport models. The hot and dense zone assumes the shape of an ellipsoid which is tilted by an angle Theta with respect to the beam axis. If matter is close to the softest point of the equation of state, this ellipsoid expands predominantly orthogonal to the direction given by Theta. This antiflow component is responsible for the previously predicted reduction of the directed transverse momentum around the softest point of the equation of state.
Als Ergebnis dieser Arbeit kann man sehen, daß es experimentiell gelungen ist, mit einem alpha-förmigen Linearresonator einen stabilen unabhängig abstimmbaren Zwei-Farben Ti:saphir Laser aufzubauen, der so in der wissenschaflichen Literatur noch nicht beschrieben ist. Eine Veröfentlichung zu der vorgelegten Arbeit [22] ist beim IEEE Journal of Quantum Electronics eingereicht worden. Die Ausgangsleistung dieses Lasers liegt bei 300 mW. Die durchgeführten Experimente lassen darauf schließen, daß der Laser die meiste Zeit nur auf einer longitudinalen Mode emittiert. Bei einem gleichzeitig möglichen Abstimmbereich von 740 nm bis 850 nm, welches ein Verhältnis von Linienbreite zu Abstimmbereich von besser als 1:250000 bedeutet. Den Beweis, daß der Laser auch bei sehr geringen Differenzfrequenzen betrieben werden kann, lieferte die direkte Messung des Schwebungssignals zwischen den beiden Lasern. Dabei muß man zugeben, daß das im Eingangszitat dieser Arbeit erwähnte Schwebungssignal nicht ohne Hilfsmittel an einer Wand zu beobachten war, sondern eine minimale Schwebung von 3 Mhz gemessen wurde. Im Vergleich zu den 3 x 10 exp 8 Mhz der einzelner Farben ist dies aber ein gutes Ergebnis. Zusätzlich wurde mit dem Ringlaser ein anderer Ansatz zur Abstimmung des Systems realisiert. Diese Anordnung hat mit 800 mW Vorteile bezüglich der Ausgangsleistung aber Nachteile in Hinblick auf Abstimmung und Linienbreite. Im theoretischen Teil konnte gezeigt werden, welche Eigenschaften ein Laser-Resonator haben muß, um stabil im Zweifarben Betrieb eingesetzt zu werden. Weiterhin konnten auch noch die dynamischen Effekte der beiden Resonatortypen mit Hilfe einer Simulation beschrieben werden. Der Laser soll in der Erzeugung von kontinuierlicher Strahlung im Thz Bereich verwendet werden. Dabei sollen photokonduktive Antennen, wie auch Halbleiteroberflächen als Emitter dienen. Bis zum Ende dieser Arbeit konnte der Laser aus zeitlichen Gründen nicht für diese Messungen eingesetzt werden, da es zu Verzögerungen mit den Proben, wie auch mit den Meßgeräten kam. Die Charakterisierung des Lasers aber zeigte, daß die beiden schmalbandigen Farben bei einer Differenzfrenz im Thz-Bereich (20 GHz–50THz) stabil zu realisieren sind.
Net proton and negative hadron spectra for central \PbPb collisions at 158 GeV per nucleon at the CERN SPS were measured and compared to spectra from lighter systems. Net baryon distributions were derived from those of net protons, utilizing model calculations of isospin contributions as well as data and model calculations of strange baryon distributions. Stopping (rapidity shift with respect to the beam) and mean transverse momentum \meanpt of net baryons increase with system size. The rapidity density of negative hadrons scales with the number of participant nucleons for nuclear collisions, whereas their \meanpt is independent of system size. The \meanpt dependence upon particle mass and system size is consistent with larger transverse flow velocity at midrapidity for \PbPb compared to \SS central collisions.
New data with a minimum bias trigger for 158 GeV/nucleon Pb + Pb have been analyzed. Directed and elliptic flow as a function of rapidity of the particles and centrality of the collision are presented. The centrality dependence of the ratio of elliptic flow to the initial space elliptic anisotropy is compared to models.
Last year the E866-group of the Fermilab measured the xF dependence of J/Psi and 2 suppression in pA collisions. We discuss two of the effects found in that experiment with regard to color coherence effects: the di erent suppression of the J/Psi and the 2 at xF < 0 and the significant suppression of both at large xF . The small xF regions is dominated by fully formed charmonium states and thus enables us to discuss the formation time and the cross section of the different charmonium states. In the large xF region the interaction of the charmonium states with nuclear matter has to be described by partonic degrees of freedom, because in that kinematic domain the formation time is much larger than the nuclear radii. The understanding of this region will be crucial for the interpretation of the data of the future heavy ion colliders RHIC and LHC.
Introduction: Until now it is not possible to determine the equation of state (EOS) of hadronic matter from QCD. One succesfully applied alternative way to describe the hadronic world at high densities and temperatures are effective models like the RMF-models [1], where the relevant degrees of freedom are baryons and mesons instead of quarks and gluons. Since approximate chiral symmetry is an essential feature of QCD, it should be a useful concept for building and restricting e ective models. It has been shown [2,3] that effective sigma-omega models including SU(2) chiral symmetry are able to obtain a reasonable description of nuclear matter and finite nuclei. Recently [4] we have shown that an extended SU(3) × SU(3) chiral sigma-omega model is able to describe nuclear matter ground state properties, vacuum properties and finite nuclei satisfactorily. This model includes the lowest SU(3) multiplets of the baryons (octet and decuplet[5]), the spin-0 and the spin-1 mesons as the relevant degrees of freedom. Here we will discuss the predictions of this model for dense, hot, and strange hadronic matter.
A coplanar three body cluster model (two deformed fragments and an alpha particle) similar to the model used for the description of cold binary fission was employed for the description of cold (neutronless) alpha accompanied fission of 252Cf. No preformation factors were considered. The three body potential was computed with the help of a double folding potential generated by the M3Y-NN effective interaction and realistic fragment ground state deformations. From the minimum action principle, the alpha particle trajectory equations, the corresponding ternary barriers, and an approximate WKB expression for the barrier penetrability are obtained. The relative cold ternary yields were calculated as the ratio of the penetrability of a given ternary fragmentation and the sum of the penetrabilities of all possible cold ternary fragmentations. Different scenarios were considered depending on the trajectories of the fragments. It was shown that two regions of cold fragmentation exist, a deformed one corresponding to large fragment deformations and a spherical one around 132Sn, similarly to the case of the cold binary fission of 252Cf. We have shown that for the scenario corresponding to the Lagrange point, where all forces acting on the alpha particle are in equilibrium, the cold alpha ternary yields of 252Cf are strongly correlated with the cold binary yields of the daughter nucleus 248Cm into the same heavy fragments. For all other scenarios only the spherical splittings are favored. We concluded that due to the present available experimental data on cold alpha ternary yields only the Lagrange scenario could describe the cold alpha ternary fission of 252Cf.
We calculate the asymptotic high-energy amplitude for electrons scattering at one ion, as well as at two colliding ions, by means of perturbation theory. We show that the interaction with one ion eikonalizes and that the interaction with two ions causally decouples. We are able to put previous results on perturbative grounds and propose further applications for the obtained rules for interactions on the light cone. We discuss the implications of the eikonal amplitude on the pair production probability in ultrarelativistic peripheral heavy-ion collisions. In this context the Weizsäcker-Williams method is shown to be exact in the ultrarelativistic limit, irrespective of the produced particles’ mass. A new equivalent single-photon distribution is derived, which correctly accounts for Coulomb distortions. The impact on single-photon induced processes is discussed.