English

Cooperatively-enhanced precision of hybrid light-matter sensors

Quantum Gases 2021-08-25 v1 Quantum Physics

Abstract

We consider a hybrid system of matter and light as a sensing device and quantify the role of cooperative effects. The latter generically enhance the precision with which modifications of the effective light-matter coupling constant can be measured. In particular, considering a fundamental model of NN qubits coupled to a single electromagnetic mode, we show that the ultimate bound for the precision shows double-Heisenberg scaling: Δθ1/(Nn)\Delta\theta\propto1/(Nn), with NN and nn being the number of qubits and photons, respectively. Moreover, even using classical states and measuring only one subsystem, a Heisenberg-times-shot-noise scaling, i.e. 1/(Nn)1/(N\sqrt{n}) or 1/(nN)1/(n\sqrt{N}), is reached. As an application, we show that a Bose-Einstein condensate trapped in a double-well potential within an optical cavity can detect the gravitational acceleration gg with the relative precision of Δg/g109Hz1/2\Delta g/g\simeq10^{-9}\text{Hz}^{-1/2}. The analytical approach presented in this study takes into account the leakage of photons through the cavity mirrors, and allows to determine the sensitivity when gg is inferred via measurements on atoms or photons.

Keywords

Cite

@article{arxiv.2007.13649,
  title  = {Cooperatively-enhanced precision of hybrid light-matter sensors},
  author = {A. Niezgoda and J. Chwedenczuk and T. Wasak and F. Piazza},
  journal= {arXiv preprint arXiv:2007.13649},
  year   = {2021}
}

Comments

13 pages, 3 figures