Local-field approach to the interaction of an ultracold dense Bose gas with a light field
arXiv:quant-ph/9811049 · doi:10.1103/PhysRevA.59.1517
Abstract
The propagation of the electromagnetic field of a laser through a dense Bose gas is examined and nonlinear operator equations for the motion of the center of mass of the atoms are derived. The goal is to present a self-consistent set of coupled Maxwell-Bloch equations for atomic and electromagnetic fields generalized to include the atomic center-of-mass motion. Two effects are considered: The ultracold gas forms a medium for the Maxwell field which modifies its propagation properties. Combined herewith is the influence of the dipole-dipole interaction between atoms which leads to a density dependent shift of the atomic transition frequency. It is expressed in a position dependent detuning and is the reason for the nonlinearity. This results in a direct and physically transparent way from the quantum field theoretical version of the local-field approach to electrodynamics in quantum media. The equations for the matter fields are general. Previously published nonlinear equations are obtained as limiting cases. As an atom optical application the scattering of a dense beam of a Bose gas is studied in the Raman-Nath regime. The main conclusion is that for increasing density of the gas the dipole-dipole interaction suppresses or enhances the scattering depending on the sign of the detuning.
19 pages, RevTeX, to be published in the Physical Review A
References in corpus (4)
Cited by in corpus (14)
- Electromagnetically induced left-handedness in a dense gas of three level atoms
- Stability of gap solitons in a Bose-Einstein condensate
- Photon-atomic solitons in a Bose-Einstein condensate trapped in a soft optical lattice
- Photonic band-gap in a realistic atomic diamond lattice: penetration depth, finite-size and vacancy effects
- Theory of Coherent Raman Superradiance Imaging of Condensed Bose Gases
- Generalized ABCD propagation for interacting atomic clouds
- Scattering states of a particle, with position-dependent mass, in a double heterojunction
- Solitons in tunnel-coupled repulsive and attractive condensates
- Correlated scattering of photons from a trapped Bose-Einstein condensate
- Slow light propagation in trapped atomic quantum gases
- Observation of Light-Induced Dipole-Dipole Forces in Ultracold Atomic Gases
- Co--propagating Bose--Einstein Condensates and electromagnetic radiation: Emission of mutually localized structures
- Multi--hump soliton--like structures in interactions of lasers and Bose--Einstein condensates
- Interference scheme to measure light-induced nonlinearities in Bose-Einstein condensates