English

Dynamics of spatial phase coherence in a dissipative Bose-Hubbard atomic system

Quantum Gases 2024-05-08 v2

Abstract

We investigate the loss of spatial coherence of one-dimensional bosonic gases in optical lattices illuminated by a near-resonant excitation laser. Because the atoms recoil in a random direction after each spontaneous emission, the atomic momentum distribution progressively broadens. Equivalently, the spatial correlation function (the Fourier-conjugate quantity of the momentum distribution) progressively narrows down as more photons are scattered. Here we measure the correlation function of the matter field for fixed distances corresponding to nearest-neighbor (n-n) and next-nearest-neighbor (n-n-n) sites of the optical lattice as a function of time, hereafter called n-n and n-n-n correlators. For strongly interacting lattice gases, we find that the n-n correlator C1C_1 decays as a power-law at long times, C11/tαC_1\propto 1/t^{\alpha}, in stark contrast with the exponential decay expected for independent particles. The power-law decay reflects a non-trivial dissipative many-body dynamics, where interactions change drastically the interplay between fluorescence destroying spatial coherence, and coherent tunnelling between neighboring sites restoring spatial coherence at short distances. The observed decay exponent α0.54(6)\alpha \approx 0.54(6) is in good agreement with the prediction α=1/2\alpha=1/2 from a dissipative Bose-Hubbard model accounting for the fluorescence-induced decoherence. Furthermore, we find that the n-n correlator C1C_1 controls the n-n-n correlator C2C_2 through the relation C2C12C_2 \approx C_1^2, also in accordance with the dissipative Bose-Hubbard model.

Keywords

Cite

@article{arxiv.2405.03226,
  title  = {Dynamics of spatial phase coherence in a dissipative Bose-Hubbard atomic system},
  author = {Rémy Vatré and Raphaël Bouganne and Manel Bosch Aguilera and Alexis Ghermaoui and Jérôme Beugnon and Raphael Lopes and Fabrice Gerbier},
  journal= {arXiv preprint arXiv:2405.03226},
  year   = {2024}
}

Comments

published in the special issue of Comptes Rendus Physique dedicated to Jean Dalibard's CNRS Gold Medal. Details of calculations, included as an appendix in the published article, are available in the ancillary file

R2 v1 2026-06-28T16:17:39.829Z