Inelastic multiple scattering of interacting bosons in weak random potentials
Description
Within the present thesis we develop a diagrammatic scattering theory for interacting bosons in a three-dimensional, weakly disordered potential. Based on a microscopic N-body scattering theory, we identify the relevant diagrams including elastic and inelastic collision processes that are sufficient to describe quantum transport in the regime of weak disorder. By taking advantage of the statistical properties of the weak disorder potential, we demonstrate how the N-body dynamics can be reduced to a nonlinear integral equation of Boltzmann type for the single-particle diffusive flux. A presently available alternative description - based on the Gross-Pitaevskii equation - only includes elastic collisions. In contrast, we show that far from equilibrium the presence of inelastic collisions - even for weak interaction strength - must be accounted for and can induce the full thermalization of the single-particle current. In addition, we also determine the coherent corrections to the incoherent transport, leading to the effect of coherent backscattering. For the first time, we are able to analyze the influence of inelastic collisions on the coherent backscattering signal, which lead to an enhancement of the backscattered cone in a narrow spectral window, even for increasing non-linearity. With a short recollection of the presently available experimental techniques we furthermore show how an immediate implementation of our suggested setup with confined Bose-Einstein condensates can be accomplished. Thereby, the emergence of collective and/or thermodynamic behavior from fundamental, microscopic constituents can also be assessed experimentally. In a second part of this thesis, we present first results for light scattering off strongly interacting Rydberg atoms trapped in a one-dimensional, chain-like configuration. In order to monitor the time-dependence of this interacting many-body system, we devise a weak measurement scenario for which we derive a master equation for the N-body density matrix of the atomic subspace. This allows us to study the influence of the weak laser fields onto the dynamics of the strongly interacting Rydberg chain, as a function of time. Whereas in the long time limit the N-body density matrix - due to the dephasing by the weak fields - relaxes to a fully mixed state, the dynamics for intermediate times reveals a strong influence of the Rydberg blockade mechanism, a signature of which can also be identified in the intensity scattered off the chain of Rydberg atoms.
Availability note (English)
Available from: https://freidok.uni-freiburg.de/fedora/objects/freidok:9140/datastreams/FILE1/co ntentAdditional details
Identifiers
Publishing Information
- Imprint Pagination
- 165 p.
INIS
- Country of Publication
- Germany
- Country of Input or Organization
- Germany
- INIS RN
- 48078734
- Subject category
- S75: CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY;
- Resource subtype / Literary indicator
- Thesis, Non-conventional Literature
- Descriptors DEI
- BACKSCATTERING; BOSE-EINSTEIN CONDENSATION; COHERENT SCATTERING; CORRECTIONS; DENSITY MATRIX; INELASTIC SCATTERING; INTEGRAL EQUATIONS; LASER RADIATION; LIGHT SCATTERING; MANY-BODY PROBLEM; MIXED STATES; MULTIPLE SCATTERING; NONLINEAR PROBLEMS; PHOTON-ATOM COLLISIONS; POTENTIALS; RANDOMNESS; RELAXATION; RYDBERG STATES; THERMALIZATION; THREE-DIMENSIONAL CALCULATIONS
- Descriptors DEC
- ATOM COLLISIONS; COLLISIONS; ELECTROMAGNETIC RADIATION; ENERGY LEVELS; EQUATIONS; EXCITED STATES; MATRICES; PHOTON COLLISIONS; QUANTUM STATES; RADIATIONS; SCATTERING; SLOWING-DOWN