Optically trapped quasi-two-dimensional Bose gases in random environment: quantum fluctuations and superfluid density
Abstract
We investigate a dilute Bose gas confined in a tight one-dimensional (1D) optical lattice plus a superimposed random potential at zero temperature. Accordingly, the ground state energy, quantum depletion and superfluid density are calculated. The presence of the lattice introduces a crossover to the quasi-2D regime, where we analyze asymptotically the 2D behavior of the system, particularly the effects of disorder. We thereby offer an analytical expression for the ground state energy of a purely 2D Bose gas in a random potential. The obtained disorder-induced normal fluid density and quantum depletion both exhibit a characteristic dependence. Their ratio increases to compared to the familiar in lattice-free 3D geometry, signifying a more pronounced contrast between superfluidity and Bose-Einstein condensation in low dimensions. Conditions for possible experimental realization of our scenario are also proposed.
Cite
@article{arxiv.1008.4273,
title = {Optically trapped quasi-two-dimensional Bose gases in random environment: quantum fluctuations and superfluid density},
author = {Kezhao Zhou and Ying Hu and Zhaoxin Liang and Zhidong Zhang},
journal= {arXiv preprint arXiv:1008.4273},
year = {2015}
}
Comments
8 pages, 2 figures