Reconfigurable optomechanical circulator and directional amplifier
Abstract
Non-reciprocal devices, which allow the non-reciprocal signal routing, serve as the fundamental elements in photonic and microwave circuits and are crucial in both classical and quantum information processing. The radiation-pressure-induced coupling between light and mechanical motion in traveling wave resonators has been exploited to break the Lorentz reciprocity, realizing non-reciprocal devices without magnetic materials. Here, we experimentally demonstrate a reconfigurable nonreciprocal device with alternative functions of either a circulator or a directional amplifier via the optomechanically induced coherent photon-phonon conversion or gain. The demonstrated device exhibits considerable flexibility and offers exciting opportunities for combining reconfigurability, non-reciprocity and active properties in single photonic structures, which can also be generalized to microwave as well as acoustic circuits.
Cite
@article{arxiv.1709.06236,
title = {Reconfigurable optomechanical circulator and directional amplifier},
author = {Zhen Shen and Yan-Lei Zhang and Yuan Chen and Fang-Wen Sun and Xu-Bo Zou and Guang-Can Guo and Chang-Ling Zou and Chun-Hua Dong},
journal= {arXiv preprint arXiv:1709.06236},
year = {2018}
}
Comments
13 pages, 4 Figures