Rydberg-atom terahertz heterodyne receiver with ultrahigh spectral resolution

Zhen-Yue She, Xiaojie Zhu, Ya-Yi Lin, Xianzhe Li, Xiaolin Yang, Yanfei Shang, Yuqin Teng, Haitao Tu, Kaiyu Liao, Caixia Zhang, Xiaohong Liu, Jiehua Chen, Wei Huang
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Abstract

Terahertz heterodyne receivers with high sensitivity and spectral resolution are crucial for various applications. Here, we present a room-temperature atomic terahertz heterodyne receiver that achieves ultrahigh sensitivity and frequency resolution. At a signal frequency of 338.7 GHz, we obtained a sensitivity of 2.88±0.09 µVcm-1Hz-1/2 for electric field measurements. The calibrated linear dynamical range spans approximately 89 dB, ranging from -110 dBV/cm to -21 dBV/cm. We demodulate a 400 symbol stream encoded in 4-state phase-shift keying, demonstrating excellent phase detection capability. By scanning the frequency of the local oscillator, we realized a terahertz spectrometer with Hz level frequency resolution. This resolution is more than two orders of magnitude higher than that of existing terahertz spectrometers. The demonstrated terahertz heterodyne receiver holds promising potential for working across the entire terahertz spectrum, significantly advancing its practical applications.
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具有超高光谱分辨率的雷德贝格-原子太赫兹外差接收器
具有高灵敏度和光谱分辨率的太赫兹外差接收器对各种应用都至关重要。在这里,我们展示了一种室温原子太赫兹外差接收器,它能实现超高灵敏度和频率分辨率。在 338.7 GHz 的信号频率下,我们获得了 2.88±0.09 µVcm-1Hz-1/2 的电场测量灵敏度。校准线性动态范围约为 89 dB,从 -110 dBV/cm 到 -21 dBV/cm。我们对以 4 态移相键控编码的 400 个符号流进行了解调,显示了出色的相位检测能力。通过扫描本地振荡器的频率,我们实现了具有赫兹级频率分辨率的太赫兹光谱仪。这一分辨率比现有的太赫兹光谱仪高出两个数量级以上。所展示的太赫兹外差接收器有望在整个太赫兹频谱范围内工作,极大地推动了其实际应用。
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