English

A Multi-path Interferometer with Ultracold Atoms Trapped in an Optical Lattice

Quantum Physics 2015-06-11 v1 Quantum Gases

Abstract

We study an ultra-cold gas of NN bosons trapped in a one dimensional MM-site optical lattice perturbed by a spatially dependent potential gxjg\cdot x^j, where the unknown coupling strength gg is to be estimated. We find that the measurement uncertainty is bounded by Δg1N(Mj1)\Delta g\propto\frac1{N (M^j-1)}. For a typical case of a linear potential, the sensitivity improves as M1M^{-1}, which is a result of multiple interferences between the sites -- an advantage of multi-path interferometers over the two-mode setups. Next, we calculate the estimation sensitivity for a specific measurement where, after the action of the potential, the particles are released from the lattice and form an interference pattern. If the parameter is estimated by a least-square fit of the average density to the interference pattern, the sensitivity still scales like M1M^{-1} for linear potentials and can be further improved by preparing a properly correlated initial state in the lattice.

Keywords

Cite

@article{arxiv.1210.4772,
  title  = {A Multi-path Interferometer with Ultracold Atoms Trapped in an Optical Lattice},
  author = {J. Chwedenczuk and F. Piazza and A. Smerzi},
  journal= {arXiv preprint arXiv:1210.4772},
  year   = {2015}
}

Comments

11 pages, 3 fugires

R2 v1 2026-06-21T22:23:23.293Z