• Chinese Optics Letters
  • Vol. 23, Issue 3, 031406 (2025)
Zhuoying Wang1, Jie Zhao1, Zizhuo Li1, Zhenxing Sun1,*..., Wentao Sun1, Jiaqiang Nie1, Yue Zhang1, Zhiqian Yin1, Wenxuan Wang2, Rulei Xiao1 and Xiangfei Chen1|Show fewer author(s)
Author Affiliations
  • 1Key Laboratory of Intelligent Optical Sensing and Manipulation of the Ministry of Education & National Laboratory of Solid State Microstructures & College of Engineering and Applied Sciences & Institute of Optical Communication Engineering, Nanjing University, Nanjing 210093, China
  • 2Ocean College, Jiangsu University of Science and Technology, Zhenjiang 212003, China
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    DOI: 10.3788/COL202523.031406 Cite this Article Set citation alerts
    Zhuoying Wang, Jie Zhao, Zizhuo Li, Zhenxing Sun, Wentao Sun, Jiaqiang Nie, Yue Zhang, Zhiqian Yin, Wenxuan Wang, Rulei Xiao, Xiangfei Chen, "Compact monolithic dual-wavelength distributed feedback laser with tunable wavelength spacing based on REC technique," Chin. Opt. Lett. 23, 031406 (2025) Copy Citation Text show less
    Schematic diagrams of (a) the proposed DW laser, (b) the cross section of the DW laser chip, and (c) the distribution for the sampling grating period in the CSG. SCH-MQW, separate confinement hetero-structure-multi-quantum well; TAR, tail absorption region; SOA, semiconductor optical amplifier.
    Fig. 1. Schematic diagrams of (a) the proposed DW laser, (b) the cross section of the DW laser chip, and (c) the distribution for the sampling grating period in the CSG. SCH-MQW, separate confinement hetero-structure-multi-quantum well; TAR, tail absorption region; SOA, semiconductor optical amplifier.
    (a) Sampling period of the CSG with two π-EPSs with various chirp rates for different wavelength spacing. (b) Simulated transmission spectra of chirped grating in front + mid, mid + rear, and total (front + mid + rear) with Bragg spacing at 0.8 nm.
    Fig. 2. (a) Sampling period of the CSG with two π-EPSs with various chirp rates for different wavelength spacing. (b) Simulated transmission spectra of chirped grating in front + mid, mid + rear, and total (front + mid + rear) with Bragg spacing at 0.8 nm.
    Simulated transmittance spectra of sampled grating with (a) high and (b) low Δn0 at different Bragg spacing. (c) Simulated relationship between the Bragg spacing and the mode spacing of the sampled grating with Δn0 at 0.0016 and 0.0005.
    Fig. 3. Simulated transmittance spectra of sampled grating with (a) high and (b) low Δn0 at different Bragg spacing. (c) Simulated relationship between the Bragg spacing and the mode spacing of the sampled grating with Δn0 at 0.0016 and 0.0005.
    Mode wavelength spacing of the DW laser with Bragg spacing at 0.4 nm and varying neff in front and rear sections.
    Fig. 4. Mode wavelength spacing of the DW laser with Bragg spacing at 0.4 nm and varying neff in front and rear sections.
    (a) Microscopic top view of the proposed DW laser and (b) the PI curve for the DW laser in the range of 0 to 240 mA.
    Fig. 5. (a) Microscopic top view of the proposed DW laser and (b) the PI curve for the DW laser in the range of 0 to 240 mA.
    Mapping diagrams about the spectra of the DW laser at the C band with high Δn0 and the wavelength shift of two modes by varying (a) ISOA from 0 to 60 mA, (b) Irear from 30 to 90 mA, and (c) Ifront from 30 to 80 mA.
    Fig. 6. Mapping diagrams about the spectra of the DW laser at the C band with high Δn0 and the wavelength shift of two modes by varying (a) ISOA from 0 to 60 mA, (b) Irear from 30 to 90 mA, and (c) Ifront from 30 to 80 mA.
    Spectra of the DW laser with high Δn0 with various (a) Irear and (b) Ifront at different states.
    Fig. 7. Spectra of the DW laser with high Δn0 with various (a) Irear and (b) Ifront at different states.
    Mapping diagrams about the spectra of the DW laser in the O band with low Δn0 and the wavelength shift of two modes by varying (a) ISOA from 0 to 60 mA, (b) Irear from 90 to 180 mA, and (c) Ifront from 90 to 120 mA.
    Fig. 8. Mapping diagrams about the spectra of the DW laser in the O band with low Δn0 and the wavelength shift of two modes by varying (a) ISOA from 0 to 60 mA, (b) Irear from 90 to 180 mA, and (c) Ifront from 90 to 120 mA.
    Zhuoying Wang, Jie Zhao, Zizhuo Li, Zhenxing Sun, Wentao Sun, Jiaqiang Nie, Yue Zhang, Zhiqian Yin, Wenxuan Wang, Rulei Xiao, Xiangfei Chen, "Compact monolithic dual-wavelength distributed feedback laser with tunable wavelength spacing based on REC technique," Chin. Opt. Lett. 23, 031406 (2025)
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