English

Multi-mode cooling of a Bose-Einstein condensate with linear quantum feedback

Quantum Gases 2025-10-15 v1 Quantum Physics

Abstract

We theoretically investigate measurement-based feedback control over the motional degrees of freedom of an oblate quasi-2D atomic Bose-Einstein condensate (BEC) subject to continuous density monitoring. We develop a linear-quadratic-Gaussian (LQG) model that describes the multi-mode dynamics of the condensate's collective excitations under continuous measurement and control. Crucially, the multi-mode cold-damping feedback control we consider uses a realistic state-estimation scheme that does not rely upon a particular model of the atomic dynamics. We present analytical results showing that collective excitations can be cooled to below single-phonon average occupation (ground-state cooling) across a broad parameter regime and identify the conditions under which the lowest steady-state phonon occupation is asymptotically achieved. Further, we develop multi-objective optimization methods that explore the trade-off between cooling speed and the final energy of the cloud and provide numerical simulations demonstrating the ground-state cooling of the lowest ten motional modes above the condensate ground state. Our investigation provides concrete guidance on the feedback control design and parameters needed to experimentally realize a feedback-cooled BEC.

Keywords

Cite

@article{arxiv.2506.02377,
  title  = {Multi-mode cooling of a Bose-Einstein condensate with linear quantum feedback},
  author = {Zain Mehdi and Matthew L. Goh and Matthew J. Blacker and Joseph J. Hope and Stuart S. Szigeti},
  journal= {arXiv preprint arXiv:2506.02377},
  year   = {2025}
}
R2 v1 2026-07-01T02:55:44.273Z