• Chinese Optics Letters
  • Vol. 21, Issue 1, 011408 (2023)
Yanjiao Guan1、2, Ruixuan Sun1、2, Ning Zhuo1、*, Xiyu Lu1、2, Jinchuan Zhang1, Shenqiang Zhai1, Junqi Liu1、2, Shuman Liu1、2, Lijun Wang1、2、**, and Fengqi Liu1、2、3
Author Affiliations
  • 1Key Laboratory of Semiconductor Materials Science, Institute of Semiconductors, Chinese Academy of Sciences, Beijing Key Laboratory of Low Dimensional Semiconductor Materials and Devices, Beijing 100083, China
  • 2Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China
  • 3Beijing Academy of Quantum Information Sciences, Beijing 100193, China
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    DOI: 10.3788/COL202321.011408 Cite this Article Set citation alerts
    Yanjiao Guan, Ruixuan Sun, Ning Zhuo, Xiyu Lu, Jinchuan Zhang, Shenqiang Zhai, Junqi Liu, Shuman Liu, Lijun Wang, Fengqi Liu. Room temperature continuous-wave operation of a dual-wavelength quantum cascade laser[J]. Chinese Optics Letters, 2023, 21(1): 011408 Copy Citation Text show less
    References

    [1] J. Faist, F. Capasso, D. L. Sivco, C. Sirtori, A. L. Hutchinson, A. Y. Cho. Quantum cascade laser. Science, 264, 553(1994).

    [2] Y. Yao, A. J. Hoffman, C. F. Gmachl. Mid-infrared quantum cascade lasers. Nat. Photonics, 6, 432(2012).

    [3] M. Razeghi, W. Zhou, S. Slivken, Q. Y. Lu, D. Wu, R. McClintock. Recent progress of quantum cascade laser research from 3 to 12 µm at the center for quantum devices [Invited]. Appl. Opt., 56, H30(2017).

    [4] L. J. Mawst, D. Botez. High-power mid-infrared (λ∼3–6 µm) quantum cascade lasers. IEEE Photonics J., 14, 1508025(2022).

    [5] R. F. Curl, F. Capasso, C. Gmachl, A. A. Kosterev, B. McManus, R. Lewicki, M. Pusharsky, G. Wysocki, F. K. Tittel. Quantum cascade lasers in chemical physics. Chem. Phys. Lett., 487, 1(2010).

    [6] S. Bartalini, M. S. Vitiello, P. De Natale. Quantum cascade lasers: a versatile source for precise measurements in the mid/far-infrared range. Meas. Sci. Technol., 25, 012001(2014).

    [7] C. W. Liu, S. Q. Zhai, J. C. Zhang, Y. H. Zhou, Z. W. Jia, F. Q. Liu, Z. G. Wang. Free-space communication based on quantum cascade laser. J. Semicond., 36, 094009(2015).

    [8] Q. Y. Lu, Y. Bai, N. Bandyopadhyay, S. Slivken, M. Razeghi. 2.4 W room temperature continuous wave operation of distributed feedback quantum cascade lasers. Appl. Phys. Lett., 98, 181106(2011).

    [9] F. M. Cheng, J. C. Zhang, Y. J. Guan, P. C. Yang, N. Zhuo, S. Q. Zhai, J. Q. Liu, L. J. Wang, S. M. Liu, F. Q. Liu, Z. G. Wang. Ultralow power consumption of a quantum cascade laser operating in continuous-wave mode at room temperature. Opt. Express, 28, 36497(2020).

    [10] F. Xie, C. G. Caneau, H. P. LeBlanc, M. T. Ho, J. Wang, S. Chaparala, L. C. Hughes, C. E. Zah. High power and high temperature continuous-wave operation of distributed Bragg reflector quantum cascade lasers. Appl. Phys. Lett., 104, 071109(2014).

    [11] P. Q. Liu, K. Sladek, X. J. Wang, J.-Y. Fan, C. F. Gmachl. Single-mode quantum cascade lasers employing a candy-cane shaped monolithic coupled cavity. Appl. Phys. Lett., 99, 241112(2011).

    [12] B. Meng, J. Tao, X. H. Li, Y. Q. Zeng, S. Wu, Q. J. Wang. Tunable single-mode slot waveguide quantum cascade lasers. Appl. Phys. Lett., 104, 201106(2014).

    [13] K. Fujita, S. Jung, Y. Jiang, J. H. Kim, A. Nakanishi, A. Ito, M. Hitaka, T. Edamura, M. A. Belkin. Recent progress in terahertz difference-frequency quantum cascade laser sources. Nanophotonics, 7, 1795(2018).

    [14] J. Jagerska, P. Jouy, A. Hugi, B. Tuzson, H. Looser, M. Mangold, M. Beck, L. Emmenegger, J. Faist. Dual-wavelength quantum cascade laser for trace gas spectroscopy. Appl. Phys. Lett., 105, 161109(2014).

    [15] F. Kapsalidis, M. Shahmohammadi, M. J. Suess, J. M. Wolf, E. Gini, M. Beck, M. Hundt, B. Tuzson, L. Emmenegger, J. Faist. Dual-wavelength DFB quantum cascade lasers: sources for multi-species trace gas spectroscopy. Appl. Phys. B, 124, 107(2018).

    [16] Y. J. Guan, L. J. Wang, N. Zhuo, J. C. Zhang, S. Q. Zhai, J. Q. Liu, S. M. Liu, F. Q. Liu. Dual-wavelength switchable, mid-infrared quantum cascade laser with two shallow-etched distributed Bragg reflectors. Opt. Express, 29, 39376(2021).

    [17] A. Bismuto, R. Terazzi, M. Beck, J. Faist. Electrically tunable, high performance quantum cascade laser. Appl. Phys. Lett., 96, 141105(2010).

    [18] H. Kogelnik, C. V. Shank. Coupled-wave theory of distributed feedback lasers. J. Appl. Phys., 43, 2327(1972).

    [19] Q. Y. Lu, W. Zhang, L. J. Wang, J. Q. Liu, L. Li, F. Q. Liu, Z. G. Wang. Holographic fabricated photonic-crystal distributed-feedback quantum cascade laser with near-diffraction-limited beam quality. Opt. Express, 17, 18900(2009).

    [20] A. Evans, S. R. Darvish, S. Slivken, J. Nguyen, Y. Bai, M. Razeghi. Buried heterostructure quantum cascade lasers with high continuous-wave wall plug efficiency. Appl. Phys. Lett., 91, 071101(2007).

    Yanjiao Guan, Ruixuan Sun, Ning Zhuo, Xiyu Lu, Jinchuan Zhang, Shenqiang Zhai, Junqi Liu, Shuman Liu, Lijun Wang, Fengqi Liu. Room temperature continuous-wave operation of a dual-wavelength quantum cascade laser[J]. Chinese Optics Letters, 2023, 21(1): 011408
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