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亚皮特斯拉光机械磁力测量法。

Subpicotesla Optomechanical Magnetometry.

作者信息

Xu An-Ning, Li Yifan, Li Xiangliang, Liu Bei, Liu Yong-Chun

机构信息

State Key Laboratory of Low-Dimensional Quantum Physics, Department of Physics, <a href="https://ror.org/03cve4549">Tsinghua University</a>, Beijing 100084, China.

Key Laboratory of Laser and Infrared System, Ministry of Education, Center for Optics Research and Engineering (CORE), <a href="https://ror.org/0207yh398">Shandong University</a>, Qingdao 266237, China.

出版信息

Phys Rev Lett. 2024 Oct 11;133(15):153601. doi: 10.1103/PhysRevLett.133.153601.

Abstract

High-sensitivity magnetometry has found important applications in fields ranging from basic science studies such as searching for dark matter and exotic particles to more practical tasks in geology, archaeology, navigation, and biomedicine. Currently, the performance of typical high-sensitivity magnetometers is limited by the required stringent operation environment, such as cryogenic conditions for superconducting quantum interference device magnetometers and near-zero-field environments for spin-exchange-relaxation-free atomic magnetometers. This Letter reports a high-sensitivity solid-state magnetometer based on a magnetostrictive gap-swing Fabry-Pérot cavity optomechanical system that is capable of benchmark performance at ambient environment conditions. Thanks to the strong resonance enhancement of the gap-swing mechanical mode, it achieves a sensitivity of 620  fT Hz^{-1/2} at room temperature and under the Earth's magnetic field, and is expected to approach the thermal-noise-limited sensitivity of 5.9  fT Hz^{-1/2} by controlling the optomechanical coupling. Our Letter opens the avenue toward the application of portable and low-maintenance high-sensitivity magnetometry in broad fields.

摘要

高灵敏度磁力测量在诸多领域都有重要应用,涵盖从基础科学研究(如寻找暗物质和奇异粒子)到地质、考古、导航和生物医学等更实际的任务。目前,典型高灵敏度磁力计的性能受所需的严苛操作环境限制,例如超导量子干涉器件磁力计需要低温条件,而无自旋交换弛豫原子磁力计需要近零场环境。本文报道了一种基于磁致伸缩间隙摆动法布里 - 珀罗腔光机械系统的高灵敏度固态磁力计,该系统能够在环境条件下实现基准性能。得益于间隙摆动机械模式的强共振增强,它在室温及地磁场下实现了620 fT Hz⁻¹/²的灵敏度,并且通过控制光机械耦合有望接近5.9 fT Hz⁻¹/²的热噪声极限灵敏度。本文为便携式和低维护高灵敏度磁力测量在广泛领域的应用开辟了道路。

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