English

Synthetic gauge field in a single optomechanical resonator

Optics 2021-03-31 v1

Abstract

Synthetic gauge fields have recently emerged, arising in the context of quantum simulations, topological matter, and the protected transportation of excitations against defects. For example, an ultracold atom experiences a light-induced effective magnetic field when tunnelling in an optical lattice, and offering a platform to simulate the quantum Hall effect and topological insulators. Similarly, the magnetic field associated with photon transport between sites has been demonstrated in a coupled resonator array. Here, we report the first experimental demonstration of a synthetic gauge field in the virtual dimension of bosonic modes in a single optomechanical resonator. By employing degenerate clockwise (CW) and counter-clockwise (CCW) optical modes and a mechanical mode, a controllable synthetic gauge field is realized by tuning the phase of the driving lasers. The non-reciprocal conversion between the three modes is realized for different synthetic magnetic fluxes. As a proof-of-principle demonstration, we also show the dynamics of the system under a fast-varying synthetic gauge field. Our demonstration not only provides a versatile and controllable platform for studying synthetic gauge fields in high dimensions but also enables an exploration of ultra-fast gauge field tuning with a large dynamic range, which is restricted for a magnetic field.

Keywords

Cite

@article{arxiv.1908.04456,
  title  = {Synthetic gauge field in a single optomechanical resonator},
  author = {Yuan Chen and Yan-Lei Zhang and Zhen Shen and Chang-Ling Zou and Guang-Can Guo and Chun-Hua Dong},
  journal= {arXiv preprint arXiv:1908.04456},
  year   = {2021}
}

Comments

6 pages, 3 figures

R2 v1 2026-06-23T10:45:53.070Z