通过受激四波混频过程检测红外光

Wei-Hang Zhang, Jing-Yuan Peng, Enze Li, Ying-hao Ye, Lei Zeng, M. Dong, D. Ding, B. Shi
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引用次数: 0

摘要

红外光学测量在工业和科学上有着广泛的应用,但与可见光探测器相比,红外探测器存在成本高、性能差的问题。四波混频(FWM)技术通过检测相关可见光实现红外范围内的探测。实验研究了85Rb热原子蒸汽池中的受激FWM过程,其中1530 nm的弱红外信号激光诱导FWM过程,并被放大转化为780 nm的强FWM光,后者更容易被探测到。通过研究输入激光的频率与产生的FWM光的关系,我们找到了最优的单光子和双光子失谐。随着信号强度的减小,功率增益迅速增加,这与我们的理论分析一致。结果表明,在0.1 μW的信号激光功率下,功率增益可达500,检测到的光子数增加了250倍。最后,我们通过实验证明了我们的放大过程可以在频域的宽带范围内工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detection of infrared light through stimulated four-wave mixing process
Infrared optical measurement has a wide range of applications in industry and science, but infrared light detectors suffer from high costs and inferior performance than visible light detectors. Four-wave mixing (FWM) process allows detection in the infrared range by detecting correlated visible light. We experimentally investigate the stimulated FWM process in a hot 85Rb atomic vapor cell, in which a weak infrared signal laser at 1,530 nm induces the FWM process and is amplified and converted into a strong FWM light at 780 nm, the latter can be detected more easily. We find the optimized single- and two-photon detunings by studying the dependence of the frequency of input laser on the generated FWM light. What’s more, the power gain increases rapidly as the signal intensity decreases, which is consistent with our theoretical analysis. As a result, the power gain can reach up to 500 at a signal laser power of 0.1 μW and the number of detected photons increased by a factor of 250. Finally, we experimentally prove that our amplification process can work in a broad band in the frequency domain by exploring the response rate of our stimulated FWM process.
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