Quantum advantage of one-way squeezing in weak-force sensing

Author:

Wang Jie1ORCID,Zhang Qian1ORCID,Jiao Ya-Feng2ORCID,Zhang Sheng-Dian1ORCID,Lu Tian-Xiang3ORCID,Li Zhipeng4ORCID,Qiu Cheng-Wei4ORCID,Jing Hui1ORCID

Affiliation:

1. Key Laboratory of Low-Dimensional Quantum Structures and Quantum Control of Ministry of Education, Department of Physics and Synergetic Innovation Center for Quantum Effects and Applications, Hunan Normal University 1 , Changsha 410081, China

2. Academy for Quantum Science and Technology, Zhengzhou University of Light Industry 2 , Zhengzhou 450002, China

3. College of Physics and Electronic Information, Gannan Normal University 3 , Ganzhou 341000, Jiangxi, China

4. Department of Electrical and Computer Engineering, National University of Singapore 4 , Singapore 117583, Singapore

Abstract

Cavity optomechanical (COM) sensors, featuring efficient light–motion couplings, have been widely used for ultrasensitive measurements of various physical quantities ranging from displacements to accelerations or weak forces. Previous works, however, have mainly focused on reciprocal COM systems. Here, we propose how to further improve the performance of quantum COM sensors by breaking reciprocal symmetry in purely quantum regime. Specifically, we consider a spinning COM resonator and show that by selectively driving it in opposite directions, highly nonreciprocal optical squeezing can emerge, which in turn provides an efficient way to surpass the standard quantum limit which is otherwise unattainable for the corresponding reciprocal devices. Our work confirms that breaking reciprocal symmetry, already achieved in diverse systems well beyond spinning systems, can serve as a new strategy to further enhance the abilities of advanced quantum sensors, for applications ranging from testing fundamental physical laws to practical quantum metrology.

Publisher

AIP Publishing

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