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We study forward-backward charge fluctuations to probe the correlations among produced particles in ultra relativistic heavy ion collisions. We develop a model that describes the forward-backward dynamical fluctuations and apply it to interpret the recent PHOBOS data. Within the present model, the dynamical fluctuations are related to the particle production mechanism via cluster decay and to long range correlations between the forward and backward rapidity hemispheres. We argue that with a tight centrality cut, PHOBOS may see a strong decrease of the dynamical fluctuations. Within the present model, this deterioration of the correlation among the produced hadrons can be interpreted as a sign for the production of a hot, dense and interacting medium.
A new experimental system has been set up with the ability to investigate catalytic processes and charge transfer of acrylonitrile on copper. For this purpose a new Time of Flight Mass Spectrometer to measure both the reaction outcome and electron energy distributions has been designed and tested. First experiments have been carried out, in which the width of the two-photon photoelectron energy distribution can be varied by changing the wavelength of the incident laser beam. This method allows high precision measurements of the work function and will be useful in the study with adsorbates, physi- or chemisorbed. In first adsorption measurements the excitation of vibrational modes of acrylonitrile has been seen to be consistent with earlier gas-phase experiments. Electron energy spectra taken with the electron analyzer with high resolution showed a clear defect in the electron yield at energies around the energy of one vibrational mode, indicating the possibility of resonant vibrational excitation by electron impact. More indications to that process were found i first electron spectra from the new TOF-MS, since a threshold for the capture probability is found at energies close to vibrational excitation. The threshold vanishes when the exposure is amplified significantly, indicating that electrons are scattered multiple and no resonance are be observed anymore. The experiments carried out were just the starting point in understanding the mechanism of the reaction. A new femtosecond laser system which is currently set up will give not only a time-resolved information on the reaction pathways but also give the possibility to create non-thermal electrons and to study intermediate states of the photoemission and the influence of the adsorbate on them. In addition the rotation of the electron analyzer will permit angle-resolved measurements of the scattering process of the electrons and the vibrational excitation via this pathway. With the new cooling system applied it will also be interesting to study the excitation process at lower temperatures. Below -160° C there are different geometries of the molecule predicted to be present at the surface. At these temperatures the thermal effects should play a major role, so that a thermal decoupling of the electrons is very desirable.
The D-meson spectral density at finite temperature is obtained within a self-consistent coupled-channel approach. For the bare meson–baryon interaction, a separable potential is taken, whose parameters are fixed by the position and width of the Λc(2593) resonance. The quasiparticle peak stays close to the free D-meson mass, indicating a small change in the effective mass for finite density and temperature. Furthermore, the spectral density develops a considerable width due to the coupled-channel structure. Our results indicate that the medium modifications for the D-mesons in nucleus-nucleus collisions at FAIR (GSI) will be dominantly on the width and not, as previously expected, on the mass.
We propose to use the hadron number fluctuations in the limited momentum regions to study the evolution of initial flows in high energy nuclear collisions. In this method by a proper preparation of a collision sample the projectile and target initial flows are marked in fluctuations in the number of colliding nucleons. We discuss three limiting cases of the evolution of flows, transparency, mixing and reflection, and present for them quantitative predictions obtained within several models. Finally, we apply the method to the NA49 results on fluctuations of the negatively charged hadron multiplicity in Pb+Pb interactions at 158A GeV and conclude that the data favor a hydrodynamical model with a significant degree of mixing of the initial flows at the early stage of collisions.
We study the gluonic phase in a two-flavor color superconductor as a function of the ratio of the gap over the chemical potential mismatch, Δ/δμ. We find that the gluonic phase resolves the chromomagnetic instability encountered in a two-flavor color superconductor for Δ/δμ<2. We also calculate approximately the free energies of the gluonic phase and the single plane-wave LOFF phase and show that the former is favored over the latter for a wide range of coupling strengths.