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通过激光拍频方案揭示太赫兹量子级联激光器的频率调谐行为。

Frequency tuning behaviour of terahertz quantum cascade lasers revealed by a laser beating scheme.

作者信息

Guan Wen, Liao Xiaoyu, Li Ziping, Wan Wenjian, Zhou Kang, Zhao Yiran, Wang Chenjie, Ma Xuhong, Wang Shumin, Cao J C, Xu Dong, Zhang Junwen, Chi Nan, Li Hua

出版信息

Opt Express. 2021 Jul 5;29(14):21269-21279. doi: 10.1364/OE.427326.

Abstract

In the terahertz frequency range, the commercialized spectrometers, such as the Fourier transform infrared and time domain spectroscopies, show spectral resolutions between a hundred megahertz and a few gigahertz. Therefore, the high precision frequency tuning ability of terahertz lasers cannot be revealed by these traditional spectroscopic techniques. In this work, we demonstrate a laser beating experiment to investigate the frequency tuning characteristics of terahertz quantum cascade lasers (QCLs) induced by temperature or drive current. Two terahertz QCLs emitting around 4.2 THz with identical active regions and laser dimensions (150 µm wide and 6 mm long) are employed in the beating experiment. One laser is operated as a frequency comb and the other one is driven at a lower current to emit a single frequency. To measure the beating signal, the single mode laser is used as a fast detector (laser self-detection). The laser beating scheme allows the high precision measurement of the frequency tuning of the single mode terahertz QCL. The experimental results show that in the investigated temperature and current ranges, the frequency tuning coefficients of the terahertz QCL are 6.1 MHz/0.1 K (temperature tuning) and 2.7 MHz/mA (current tuning) that cannot be revealed by a traditional terahertz spectrometer. The laser beating technique shows potential abilities in high precision linewidth measurements of narrow absorption lines and multi-channel terahertz communications.

摘要

在太赫兹频率范围内,商业化的光谱仪,如傅里叶变换红外光谱仪和时域光谱仪,其光谱分辨率在100兆赫兹到几吉赫兹之间。因此,太赫兹激光器的高精度频率调谐能力无法通过这些传统光谱技术展现出来。在这项工作中,我们展示了一个激光拍频实验,以研究温度或驱动电流引起的太赫兹量子级联激光器(QCL)的频率调谐特性。在拍频实验中使用了两个有源区和激光器尺寸相同(宽150微米,长6毫米)、发射频率约为4.2太赫兹的太赫兹QCL。一个激光器作为频率梳工作,另一个以较低电流驱动以发射单频。为了测量拍频信号,单模激光器用作快速探测器(激光自检测)。激光拍频方案允许对单模太赫兹QCL的频率调谐进行高精度测量。实验结果表明,在所研究的温度和电流范围内,太赫兹QCL的频率调谐系数分别为6.1兆赫兹/0.1开尔文(温度调谐)和2.7兆赫兹/毫安(电流调谐),这是传统太赫兹光谱仪无法揭示的。激光拍频技术在窄吸收线的高精度线宽测量和多通道太赫兹通信方面显示出潜在能力。

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