English

Coherence time of a Bose-Einstein condensate

Quantum Gases 2015-05-13 v2

Abstract

Temporal coherence is a fundamental property of macroscopic quantum systems, such as lasers in optics and Bose-Einstein condensates in atomic gases and it is a crucial issue for interferometry applications with light or matter waves. Whereas the laser is an "open" quantum system, ultracold atomic gases are weakly coupled to the environment and may be considered as isolated. The coherence time of a condensate is then intrinsic to the system and its derivation is out of the frame of laser theory. Using quantum kinetic theory, we predict that the interaction with non-condensed modes gradually smears out the condensate phase, with a variance growing as A t^2+B t+C at long times t, and we give a quantitative prediction for A, B and C. Whereas the coefficient A vanishes for vanishing energy fluctuations in the initial state, the coefficients B and C are remarkably insensitive to these fluctuations. The coefficient B describes a diffusive motion of the condensate phase that sets the ultimate limit to the condensate coherence time. We briefly discuss the possibility to observe the predicted phase spreading, also including the effect of particle losses.

Keywords

Cite

@article{arxiv.0907.1025,
  title  = {Coherence time of a Bose-Einstein condensate},
  author = {Alice Sinatra and Yvan Castin and Emilia Witkowska},
  journal= {arXiv preprint arXiv:0907.1025},
  year   = {2015}
}

Comments

17 pages, 8 figures; typos corrected

R2 v1 2026-06-21T13:22:05.697Z