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皮特斯拉灵敏度微腔光机械磁力测量法。

Picotesla-sensitivity microcavity optomechanical magnetometry.

作者信息

Hu Zhi-Gang, Gao Yi-Meng, Liu Jian-Fei, Yang Hao, Wang Min, Lei Yuechen, Zhou Xin, Li Jincheng, Cao Xuening, Liang Jinjing, Hu Chao-Qun, Li Zhilin, Lau Yong-Chang, Cai Jian-Wang, Li Bei-Bei

机构信息

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, China.

University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Light Sci Appl. 2024 Sep 29;13(1):279. doi: 10.1038/s41377-024-01643-7.

Abstract

Cavity optomechanical systems have enabled precision sensing of magnetic fields, by leveraging the optical resonance-enhanced readout and mechanical resonance-enhanced response. Previous studies have successfully achieved mass-produced and reproducible microcavity optomechanical magnetometry (MCOM) by incorporating Terfenol-D thin films into high-quality (Q) factor whispering gallery mode (WGM) microcavities. However, the sensitivity was limited to 585 pT Hz, over 20 times inferior to those using Terfenol-D particles. In this work, we propose and demonstrate a high-sensitivity and mass-produced MCOM approach by sputtering a FeGaB thin film onto a high-Q SiO WGM microdisk. Theoretical studies are conducted to explore the magnetic actuation constant and noise-limited sensitivity by varying the parameters of the FeGaB film and SiO microdisk. Multiple magnetometers with different radii are fabricated and characterized. By utilizing a microdisk with a radius of 355 μm and a thickness of 1 μm, along with a FeGaB film with a radius of 330 μm and a thickness of 1.3 μm, we have achieved a remarkable peak sensitivity of 1.68 pT Hz at 9.52 MHz. This represents a significant improvement of over two orders of magnitude compared with previous studies employing sputtered Terfenol-D film. Notably, the magnetometer operates without a bias magnetic field, thanks to the remarkable soft magnetic properties of the FeGaB film. Furthermore, as a proof of concept, we have demonstrated the real-time measurement of a pulsed magnetic field simulating the corona current in a high-voltage transmission line using our developed magnetometer. These high-sensitivity magnetometers hold great potential for various applications, such as magnetic induction tomography and corona current monitoring.

摘要

腔光机械系统通过利用光学共振增强读出和机械共振增强响应,实现了对磁场的精确传感。先前的研究通过将Terfenol-D薄膜纳入高品质(Q)因子回音壁模式(WGM)微腔,成功实现了大规模生产且可重复的微腔光机械磁力测量(MCOM)。然而,其灵敏度仅限于585 pT/Hz,比使用Terfenol-D颗粒的情况低20倍以上。在这项工作中,我们提出并展示了一种高灵敏度且可大规模生产的MCOM方法,即通过在高Q值的SiO WGM微盘上溅射FeGaB薄膜。通过改变FeGaB薄膜和SiO微盘的参数,进行了理论研究以探索磁驱动常数和噪声限制灵敏度。制造并表征了多个不同半径的磁力计。通过使用半径为355μm、厚度为1μm的微盘,以及半径为330μm、厚度为1.3μm的FeGaB薄膜,我们在9.52 MHz处实现了1.68 pT/Hz的显著峰值灵敏度。与先前采用溅射Terfenol-D薄膜的研究相比,这代表了超过两个数量级的显著提升。值得注意的是,由于FeGaB薄膜具有卓越的软磁性能,该磁力计无需偏置磁场即可运行。此外,作为概念验证,我们已经展示了使用我们开发的磁力计实时测量模拟高压输电线路中电晕电流的脉冲磁场。这些高灵敏度磁力计在诸如磁感应断层扫描和电晕电流监测等各种应用中具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/afd9/11439073/d1eeb5e4f011/41377_2024_1643_Fig1_HTML.jpg

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