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Integrated microcavity electric field sensors using Pound-Drever-Hall detection.

Authors :
Ma, Xinyu
Cai, Zhaoyu
Zhuang, Chijie
Liu, Xiangdong
Zhang, Zhecheng
Liu, Kewei
Cao, Bo
He, Jinliang
Yang, Changxi
Bao, Chengying
Zeng, Rong
Source :
Nature Communications; 2/15/2024, Vol. 15 Issue 1, p1-8, 8p
Publication Year :
2024

Abstract

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 Hz ), 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. Here the authors develop a chip-scale thin-film lithium niobate microcavity electric field sensor enabling real-time amplitude and phase measurements of various electric field waveforms. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20411723
Volume :
15
Issue :
1
Database :
Complementary Index
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
175755388
Full Text :
https://doi.org/10.1038/s41467-024-45699-w