• 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
    Conduction band diagram and the relevant wave functions of the active core under an applied electric field of 60 kV/cm.
    Fig. 1. Conduction band diagram and the relevant wave functions of the active core under an applied electric field of 60 kV/cm.
    EL spectrum measured at a sub-threshold current.
    Fig. 2. EL spectrum measured at a sub-threshold current.
    Concept design of superposed DFB grating dual-wavelength QCL. Inset: SEM image of the dual-period superposed gratings.
    Fig. 3. Concept design of superposed DFB grating dual-wavelength QCL. Inset: SEM image of the dual-period superposed gratings.
    Coupling coefficient (κ) varies with the grating duty cycle (σ) for the two wavelengths. The insets show the calculated modal profiles of λ1 emission with σ = 0.5 (right) and λ2 emission with σ = 0.4 (left), respectively.
    Fig. 4. Coupling coefficient (κ) varies with the grating duty cycle (σ) for the two wavelengths. The insets show the calculated modal profiles of λ1 emission with σ = 0.5 (right) and λ2 emission with σ = 0.4 (left), respectively.
    (a) Optical spectra measured at various currents at 20°C in CW mode. (b) Single-mode spectra of the 7.61 µm and 7.06 µm emission at the currents of 1.2Ith and 1.7Ith, respectively, with SMSR above 25 dB.
    Fig. 5. (a) Optical spectra measured at various currents at 20°C in CW mode. (b) Single-mode spectra of the 7.61 µm and 7.06 µm emission at the currents of 1.2Ith and 1.7Ith, respectively, with SMSR above 25 dB.
    (a) Light-current-voltage (L-I-V) curves of the dual-wavelength QCL measured at 10°C and 20°C in CW mode. The three colored areas under the 20°C L-I curve correspond to three different injection current ranges with different lasing modes. (b) Temperature-dependent spectra of single-mode λ1 (upper panel) and single-mode λ2 (lower panel) measured from 10°C to 40°C; the insets show the linear tuning of the peak wavenumber with temperature.
    Fig. 6. (a) Light-current-voltage (L-I-V) curves of the dual-wavelength QCL measured at 10°C and 20°C in CW mode. The three colored areas under the 20°C L-I curve correspond to three different injection current ranges with different lasing modes. (b) Temperature-dependent spectra of single-mode λ1 (upper panel) and single-mode λ2 (lower panel) measured from 10°C to 40°C; the insets show the linear tuning of the peak wavenumber with temperature.
    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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