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中红外量子级联激光器中太赫兹产生的光谱研究

Spectroscopic Study of Terahertz Generation in Mid-Infrared Quantum Cascade Lasers.

作者信息

Jiang Yifan, Vijayraghavan Karun, Jung Seungyong, Jiang Aiting, Kim Jae Hyun, Demmerle Frederic, Boehm Gerhard, Amann Markus C, Belkin Mikhail A

机构信息

Department of Electrical and Computer Engineering, The University of Texas at Austin, Microelectronics Research Center, 10100 Burnet Road, Austin, TX 78758, U.S.A.

Walter Schottky Institut, Technische Universität München, Am Coulombwall 4, 85748, Garching, Germany.

出版信息

Sci Rep. 2016 Feb 16;6:21169. doi: 10.1038/srep21169.

Abstract

Terahertz quantum cascade laser sources based on intra-cavity difference-frequency generation are currently the only room-temperature mass-producible diode-laser-like emitters of coherent 1-6 THz radiation. Device performance has improved dramatically over the past few years to reach milliwatt-level power output and broad tuning from 1.2 to 5.9 THz, all at room-temperature. Terahertz output in these sources originates from intersubband optical nonlinearity in the laser active region. Here we report the first comprehensive spectroscopic study of the optical nonlinearity and investigate its dependence on the mid-infrared pump frequencies. Our work shows that the terahertz generation efficiency can vary by a factor of 2 or greater depending on the spectral position of the mid-infrared pumps for a fixed THz difference-frequency. We have also measured for the first time the linewidth for transitions between the lower quantum cascade laser states, which is critical for determining terahertz nonlinearity and predicting optical loss in quantum cascade laser waveguides.

摘要

基于腔内差频产生的太赫兹量子级联激光源是目前唯一可在室温下大规模生产的、类似二极管激光器的相干1-6太赫兹辐射发射器。在过去几年中,器件性能有了显著提升,在室温下即可实现毫瓦级的功率输出以及从1.2到5.9太赫兹的宽调谐范围。这些光源中的太赫兹输出源自激光有源区的子带间光学非线性。在此,我们报告了对光学非线性的首次全面光谱研究,并研究了其对中红外泵浦频率的依赖性。我们的工作表明,对于固定的太赫兹差频,太赫兹产生效率可能会因中红外泵浦的光谱位置而变化2倍或更大。我们还首次测量了较低量子级联激光态之间跃迁的线宽,这对于确定太赫兹非线性和预测量子级联激光波导中的光学损耗至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69c9/4754771/7b521ee999ce/srep21169-f1.jpg

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