Refine
Document Type
- Doctoral Thesis (2)
Language
- English (2) (remove)
Has Fulltext
- yes (2)
Is part of the Bibliography
- no (2)
Keywords
- Anisotropie (2) (remove)
Institute
- Physik (2)
This work reports on the study of the projectile x-ray emission in relativistic ion-atom collisions. Excitation of K-shell in He-like uranium ions, electron capture into H-like uranium ions and Simultaneous ionization and excitation of initially He-like uranium ions have been studied using the experimental storage ring at GSI. Information about the population of the excited states for the H- and He-like uranium ions, can be obtained by measuring the angular distribution of the decay radiation. Since the Ly_alpha2 transition is isotropic, the intensities of the Ly_alpha1 and K_alpha transitions were normalized to the Ly_alpha2 line. For the K_alpha1 and K_alpha2 transitions originating from the excitation of the He-like uranium ions, no alignment was observed. In contrast, the Ly_alpha1 radiation from the simultaneous ionization-excitation process of the He-like uranium ions shows a clear alignment. It is shown that the alignment of Ly_alpha1 was obtained by the Alignment parameter A_20. The experimental value leads to the inclusion of a magnetic term in the interaction potential. It is interesting to note that in the case of the Ly_alpha1 emission the small M2 contribution added coherently to the E1 transition amplitudes enhances the anisotropy. The capture process of target electrons into the highly-charged heavy ions was studied using H-like uranium ions at an incident energy of 220 MeV/u, impinging on N2 gas-target. It was shown that, the strongly aligned electrons captured in 2p3/2 level will couple with the available 1s1/2 electron which shows no initial directional preference. The magnetic sub-state population of the 2p3/2 electron will be redistributed according to the coupling rules to the magnetic sub-states of the relevant two-electron states. Consequently, the 1^P1 and 3^P2 states are corresponding to the the strongly aligned 2p3/2 state. This leads to the large anisotropy in the corresponding individual ground state transitions contributing to the K_alpha1 emission. Due to the fact that the 1^P1 --> 1^S0 and 3^P2 --> 1^S0 transitions are experimentally not resolved, a more detailed analysis of the angular dependence of the K_alpha1 radiation is required. From the K_alpha1/K_alpha2 ratio, the current results show that the incoherent addition of the E1 and M2 transition components yield to an almost isotropic emission of the total K_alpha1. In contrast to the radiative electron capture, the experimental results for the K-shell single excitation of He-like uranium ions indicate that only the 1^P1 level contributes to the K_alpha1 transition. For this case, the anisotropy parameter beta_20 was found to be -0.20 + 0.03 which is similar to that one calculated for pure E1 transition. This work also reports on the study of a two-electron process: the simultaneous ionization and excitation occurring in relativistic collisions of heavy highly-charged ions with gaseous targets. The investigation was performed on He-like uranium ions impinging upon xenon gas-target at an incident energy of 220 MeV/u. The measurements have been performed at the ESR gas-target using atomic xenon with a typical area density of 10^12 particles/cm^2. In contrast to the solid state target, the use of gas target offers the advantage of clear separation of the one step two-electron process due to the fact that the probability of two consecutive collision in such thin targets is negligible and the double step processes can be excluded. During the process of simultaneous ionization and excitation in He-like uranium ions, one of the ground-state electrons is promoted into the continuum and the other into the L-subshell states of the projectile. To select this process, the Lyman-series radiation has been measured at various observation angles in coincidence with up-charged projectiles (U^91+). From the yields of the Ly_alpha1 and Ly_alpha2 projectile radiation, the relative cross section for the process of simultaneous ionization and excitation was directly determined. The angle dependent measurement of the radiation yields provide information about the angular distributions of the emitted radiation and permits the determination of the alignment parameter A_{20}. This parameter gives information on the level population and the collision impact parameter. The present results (b^exp = 810 fm) show that the simultaneous ionization and excitation is a process which occurs at small impact parameter.
In this work we study the non-equilibrium dynamics of a quark-gluon plasma, as created in heavy-ion collisions. We investigate how big of a role plasma instabilities can play in the isotropization and equilibration of a quark-gluon plasma. In particular, we determine, among other things, how much collisions between the particles can reduce the growth rate of unstable modes. This is done both in a model calculation using the hard-loop approximation, as well as in a real-time lattice simulation combining both classical Yang-Mills-fields as well as inter-particle collisions. The new extended version of the simulation is also used to investigate jet transport in isotropic media, leading to a cutoff-independent result for the transport coefficient $hat{q}$. The precise determination of such transport coefficients is essential, since they can provide important information about the medium created in heavy-ion collisions. In anisotropic media, the effect of instabilities on jet transport is studied, leading to a possible explanation for the experimental observation that high-energy jets traversing the plasma perpendicular to the beam axis experience much stronger broadening in rapidity than in azimuth. The investigation of collective modes in the hard-loop limit is extended to fermionic modes, which are shown to be all stable. Finally, we study the possibility of using high energy photon production as a tool to experimentally determine the anisotropy of the created system. Knowledge of the degree of local momentum-space anisotropy reached in a heavy-ion collision is essential for the study of instabilities and their role for isotropization and thermalization, because their growth rate depends strongly on the anisotropy.