Enhancing optomechanical force sensing utilizing synthetic magnetism

Fuente: arXiv
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Autori principali: Xu, Ding-hui, Liu, Zheng, Yu, Chang-shui
Natura: Preprint
Pubblicazione: 2025
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author Xu, Ding-hui
Liu, Zheng
Yu, Chang-shui
author_facet Xu, Ding-hui
Liu, Zheng
Yu, Chang-shui
contents In precision force sensing of multi-mechanical mode optomechanical systems, coherent interference can decouple certain degenerate vibrational modes from the cavity field, leading to incomplete information regarding the measured signal. In this paper, we propose a scheme to enhance and control the detection bandwidth in optomechanical force sensing by exploiting synthetic magnetism achieved through tuning phonon hopping interactions. By toggling between broken and unbroken dark mode, this approach effectively manages the response bandwidth and exhibits intriguing additional noise characteristics. Specifically, when the dark mode remains unbroken, the thermal noise is robust and reduced to half of that of a standard device. In contrast, when the dark mode is broken, thermal noise increases substantially at mechanical resonance but remains the same as when the dark mode is unbroken at effective detection frequencies. Moreover, our scheme offers the dual benefit of amplifying the mechanical response while suppressing additional noise, with the potential to surpass the standard quantum limit.
format Preprint
id arxiv_https___arxiv_org_abs_2510_08234
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Enhancing optomechanical force sensing utilizing synthetic magnetism
Xu, Ding-hui
Liu, Zheng
Yu, Chang-shui
Quantum Physics
In precision force sensing of multi-mechanical mode optomechanical systems, coherent interference can decouple certain degenerate vibrational modes from the cavity field, leading to incomplete information regarding the measured signal. In this paper, we propose a scheme to enhance and control the detection bandwidth in optomechanical force sensing by exploiting synthetic magnetism achieved through tuning phonon hopping interactions. By toggling between broken and unbroken dark mode, this approach effectively manages the response bandwidth and exhibits intriguing additional noise characteristics. Specifically, when the dark mode remains unbroken, the thermal noise is robust and reduced to half of that of a standard device. In contrast, when the dark mode is broken, thermal noise increases substantially at mechanical resonance but remains the same as when the dark mode is unbroken at effective detection frequencies. Moreover, our scheme offers the dual benefit of amplifying the mechanical response while suppressing additional noise, with the potential to surpass the standard quantum limit.
title Enhancing optomechanical force sensing utilizing synthetic magnetism
topic Quantum Physics
url https://arxiv.org/abs/2510.08234