Ma Xinyu, Cai Zhaoyu, Zhuang Chijie, Liu Xiangdong, Zhang Zhecheng, Liu Kewei, Cao Bo, He Jinliang, Yang Changxi, Bao Chengying, Zeng Rong
State Key Laboratory of Power Systems, Department of Electrical Engineering, Tsinghua University, Beijing, 100084, China.
State Key Laboratory of Precision Measurement Technology and Instruments, Department of Precision Instruments, Tsinghua University, Beijing, 100084, China.
Nat Commun. 2024 Feb 15;15(1):1386. doi: 10.1038/s41467-024-45699-w.
Discerning weak electric fields has important implications for cosmology, quantum technology, and identifying power system failures. Photonic integration of electric field sensors is highly desired for practical considerations and offers opportunities to improve performance by enhancing microwave and lightwave interactions. Here, we demonstrate a high-Q microcavity electric field sensor (MEFS) by leveraging the silicon chip-based thin film lithium niobate photonic integrated circuits. Using the Pound-Drever-Hall detection scheme, our MEFS achieves a detection sensitivity of 5.2 μV/(m[Formula: see text]), which surpasses previous lithium niobate electro-optical electric field sensors by nearly two orders of magnitude, and is comparable to atom-based quantum sensing approaches. Furthermore, our MEFS has a bandwidth that can be up to three orders of magnitude broader than quantum sensing approaches and measures fast electric field amplitude and phase variations in real-time. The ultra-sensitive MEFSs represent a significant step towards building electric field sensing networks and broaden the application spectrum of integrated microcavities.
识别弱电场对宇宙学、量子技术以及电力系统故障识别具有重要意义。出于实际考虑,电场传感器的光子集成备受期待,并且通过增强微波与光波相互作用为提高性能提供了机会。在此,我们通过利用基于硅芯片的薄膜铌酸锂光子集成电路展示了一种高Q微腔电场传感器(MEFS)。采用庞德 - 德雷弗 - 霍尔检测方案,我们的MEFS实现了5.2 μV/(m[公式:见正文])的检测灵敏度,这比之前的铌酸锂电光电场传感器高出近两个数量级,并且与基于原子的量子传感方法相当。此外,我们的MEFS具有比量子传感方法宽达三个数量级的带宽,能够实时测量快速变化的电场幅度和相位。这种超灵敏MEFS朝着构建电场传感网络迈出了重要一步,并拓宽了集成微腔的应用范围。