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    Highly sensitive temperature sensing via quadratic optomechanical coupling

    Yu-Sheng Tang1, Xun-Wei Xu1,2,3,*, Jie-Qiao Liao1,2,3, Hui Jing1,2,3, and Le-Man Kuang1,2,3

    • 1Key Laboratory of Low-Dimensional Quantum Structures and Quantum Control of Ministry of Education, Key Laboratory for Matter Microstructure and Function of Hunan Province, Department of Physics and Synergetic Innovation Center for Quantum Effects and Applications, Hunan Normal University, Changsha 410081, China
    • 2Hunan Research Center of the Basic Discipline for Quantum Effects and Quantum Technologies, Hunan Normal University, Changsha 410081, China
    • 3Institute of Interdisciplinary Studies, Hunan Normal University, Changsha 410081, China

    • *Contact author: xwxu@hunnu.edu.cn

    Phys. Rev. A 111, 063513 – Published 12 June, 2025

    DOI: https://doi.org/10.1103/1f8d-44ym

    Abstract

    The effective frequency of a mechanical resonator can be tuned via the spring effect induced by quadratic optomechanical (QOM) coupling, and both spontaneous symmetry breaking and anti-parity-time phase transition were predicted in the QOM systems. Here, we show that the mechanical susceptibility can be enhanced significantly by driving the QOM system with a strong external optical field, and divergence will happen as the driving strength approaches the critical point (CP) for spontaneous symmetry breaking. Based on the CP, we propose a highly sensitive temperature sensor with a mechanical resonator quadratically coupled to an optical mode. We find that the sensitivity of the temperature sensor can be enhanced by several orders of magnitude as the driving strength approaches the CP, and the sensitivity of the temperature sensor remains high in the low-temperature limit. Our work provides an effective way to realize highly sensitive temperature sensing at ultralow temperature in QOM systems.

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