arXiv · 2609.06567
Floquet-sideband-enhanced shortwave electrometry with Rydberg atoms
Abstract
Rydberg atomic electric-field sensors, under the framework of optical excitation and readout, can overcome the size-to-wavelength constraint imposed by the Chu limit. However, their sensitivity for decametric-wavelength shortwave electric fields is substantially lower than that for microwave ones, stemming from the off-resonant nature of low-frequency signals with Rydberg transitions. Here, we demonstrate a high-sensitivity heterodyne shortwave sensor based on microwave-dressed Rydberg atoms, leveraging precisely modulated Floquet sidebands. Around local- and microwave-field-engineered Floquet sidebands, the steep response gradient, arising from the enhanced atom-shortwave interaction through additionally created coherent channels, induces pronounced amplification of the heterodyne intermediate-frequency signal. As a result, compared to the same atomic heterodyne setup without microwave modulation, such Floquet-sideband-enhanced shortwave measurement boosts the sensitivity by four orders of magnitude, yielding a sensitivity of -122.7 dBm/Hz for shortwave at 30 MHz. This work offers a potential route to high-sensitive portable shortwave receivers in radio astronomy, radar and long-distance communications.
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Jiaqi Yuan, Yunlong Xue, Yongjie Cheng, Ruidong He, Jiteng Sheng, Yanpeng Zhang, Zhengyang Bai, Yu-Qiang Ma, Min Xiao, Zhaoyang Zhang. 2026-09-06. Floquet-sideband-enhanced shortwave electrometry with Rydberg atoms. https://arxiv.org/abs/2609.06567
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