• High Power Laser and Particle Beams
  • Vol. 34, Issue 11, 111005 (2022)
Ying Liu, Tao Jiang, Qi Yang, Xuemin Wang*, Zhiqiang Zhan, Ruijiao Zou, Jiawen Luo, Long Fan, Fengwei Chen, and Weidong Wu
Author Affiliations
  • Key Laboratory of Plasma Physics, Laser Fusion Research Center, CAEP, Mianyang 621900, China
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    DOI: 10.11884/HPLPB202234.220131 Cite this Article
    Ying Liu, Tao Jiang, Qi Yang, Xuemin Wang, Zhiqiang Zhan, Ruijiao Zou, Jiawen Luo, Long Fan, Fengwei Chen, Weidong Wu. Study on grating feedback characteristics of distributed feedback quantum cascade laser[J]. High Power Laser and Particle Beams, 2022, 34(11): 111005 Copy Citation Text show less
    References

    [1] Shu Hong, Suttinger M, Lyakh A, et al. Floquet-Bloch analysis for distributed feedback quantum cascade lasers with a non-rectangular top-metal grating profile[J]. IEEE Journal of Quantum Electronics, 55, 1-7(2019).

    [2] Sigler C, Wang Xiaodong, Mawst L J, et al. First-order grating TM coupling coefficients for distributed feedback quantum cascade lasers[J]. IEEE Journal of Quantum Electronics, 54, 2300207(2018).

    [3] Babichev A V, Gladyshev A G, Filimonov A V, et al. Heterostructures for quantum-cascade lasers of the wavelength range of 7-8 μm[J]. Technical Physics Letters, 43, 666-669(2017).

    [4] Dang Jingmin, Yu Haiye, Sun Yujing, et al. A CO trace gas detection system based on continuous wave DFB-QCL[J]. Infrared Physics & Technology, 82, 183-191(2017).

    [5] Abramov P I, Budarin A S, Kuznetsov E V, et al. Quantum-cascade lasers in atmospheric optical communication lines: challenges and prospects (review)[J]. Journal of Applied Spectroscopy, 87, 579-600(2020).

    [6] Babichev A V, Gladyshev A G, Kurochkin A S, et al. Room temperature lasing of multi-stage quantum-cascade lasers at 8 μm wavelength[J]. Semiconductors, 52, 1082-1085(2018).

    [7] Baranov A N, Bahriz M, Teissier R. Room temperature continuous wave operation of InAs-based quantum cascade lasers at 15 μm[J]. Optics Express, 24, 18799-18806(2016).

    [8] Cui Xiaojuan, Yu Runqing, Chen Weidong, et al. Development of a quantum cascade laser-based sensor for environmental HONO monitoring in the mid-infrared at 8 μm[J]. Journal of Lightwave Technology, 37, 2784-2791(2019).

    [9] Tittel F K, Allred J J, Cao Yingchun , et al. Quantum cade laserbased sens system f nitric oxide detection[C]Proceedings of SPIE 9370, Quantum Sensing Nanophotonic Devices XII. 2015: 9370.

    [10] Wei Qianhe, Li Bincheng, Wang Jing, et al. Impact of residual water vapor on the simultaneous measurements of trace CH4 and N2O in air with cavity ring-down spectroscopy[J]. Atmosphere, 12, 221(2021).

    [11] Deng Yu, Zhao Binbin, Wang Xingguang, et al. Narrow linewidth characteristics of interband cascade lasers[J]. Applied Physics Letters, 116, 201101(2020).

    [12] Golyak I S, Morozov A N, Svetlichnyi S I, et al. Identification of chemical compounds by the reflected spectra in the range of 5.3-12.8 μm using a tunable quantum cascade laser[J]. Russian Journal of Physical Chemistry B, 13, 557-564(2019).

    [13] Pierściński K, Kuźmicz A, Pierścińska D, et al. Optimization of cavity designs of tapered AlInAs/InGaAs/InP quantum cascade lasers emitting at 4.5 μm[J]. IEEE Journal of Selected Topics in Quantum Electronics, 25, 1901009(2019).

    [14] Zhao Yue, Zhang Jinchuan, Jia Zhiwei, et al. Low power consumption distributed-feedback quantum cascade lasers operating in continuous-wave mode above 90 ℃ at λ ~ 7.2 μm[J]. Chinese Physics Letters, 33, 124201(2016).

    [15] Briggs R M, Frez C, Fradet M, et al. Low-dissipation 7.4-µm single-mode quantum cascade lasers without epitaxial regrowth[J]. Optics Express, 24, 14589-14595(2016).

    [16] Zhou Wenjia, Wu Donghai, McClintock R, et al. High performance monolithic, broadly tunable mid-infrared quantum cascade lasers[J]. Optica, 4, 1228-1231(2017).

    [17] Zhuo Ning, Zhang Jinchuan, Liu Fengqi, et al. Tunable distributed feedback quantum cascade lasers by a sampled Bragg grating[J]. IEEE Photonics Technology Letters, 25, 1039-1042(2013).

    [18] Cheng F M, Zhang J C, Zhao Y, et al. Study on the wavelength detuning distributed feedback quantum cascade lasers[J]. Journal of Nanoscience and Nanotechnology, 18, 7523-7526(2018).

    [19] Faist J, Gmachl C, Capasso F, et al. Distributed feedback quantum cascade lasers[J]. Applied Physics Letters, 70, 2670-2672(1997).

    [20] Chen C L. Foundations f guidedwave optics[M]. Hoboken: John Wiley & Sons, 2006.

    [21] Streifer W, Scifres D, Burnham R. TM-mode coupling coefficients in guided-wave distributed feedback lasers[J]. IEEE Journal of Quantum Electronics, 12, 74-78(1976).

    [22] Virtanen H, Uusitalo T, Dumitrescu M. Simulation studies of DFB laser longitudinal structures for narrow linewidth emission[J]. Optical and Quantum Electronics, 49, 160(2017).

    Ying Liu, Tao Jiang, Qi Yang, Xuemin Wang, Zhiqiang Zhan, Ruijiao Zou, Jiawen Luo, Long Fan, Fengwei Chen, Weidong Wu. Study on grating feedback characteristics of distributed feedback quantum cascade laser[J]. High Power Laser and Particle Beams, 2022, 34(11): 111005
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