• Acta Optica Sinica
  • Vol. 43, Issue 10, 1014002 (2023)
Yunshan Zhang1, Tongfei Zhao1, Jianqin Shi1, Lianyan Li1, Yifan Xu1, Tao Fang2, Yongming Nie3, Jilin Zheng4、**, Hui Zou1, and Xiangfei Chen2、*
Author Affiliations
  • 1College of Electronic and Optical Engineering & College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications, Nanjing 210023, Jiangsu, China
  • 2College of Engineering and Applied Sciences, Nanjing University, Nanjing 210093, Jiangsu, China
  • 3China Satellite Maritime Tracking and Control Department, Jiangyin 214431, Jiangsu, China
  • 4College of Communications Engineering, Army Engineering University of PLA, Nanjing 210007, Jiangsu, China
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    DOI: 10.3788/AOS221985 Cite this Article Set citation alerts
    Yunshan Zhang, Tongfei Zhao, Jianqin Shi, Lianyan Li, Yifan Xu, Tao Fang, Yongming Nie, Jilin Zheng, Hui Zou, Xiangfei Chen. Monolithic Integrated Two-Section Dual-Wavelength Distributed Feedback Semiconductor Laser[J]. Acta Optica Sinica, 2023, 43(10): 1014002 Copy Citation Text show less
    References

    [1] Jiang X, Kang B, Li X M et al. Microwave technology for brain activities detection of rats[C], 918-920(2016).

    [2] Alarifi A, Al-Salman A, Alsaleh M et al. Ultra wideband indoor positioning technologies: analysis and recent advances[J]. Sensors, 16, E707(2016).

    [3] Dai Y T, Yao J P. Nonuniformly spaced photonic microwave delay-line filters and applications[J]. IEEE Transactions on Microwave Theory and Techniques, 58, 3279-3289(2010).

    [4] Herrera L E Y, Ribeiro R M, Jabulka V B et al. Photonic generation and transmission of linearly chirped microwave pulses with high TBWP by self-heterodyne technique[J]. Journal of Lightwave Technology, 36, 4408-4415(2018).

    [5] Zhou H M, Hu M, Xia M Y et al. Experimental study of Y-cavity dual-wavelength laser with wide tunable frequency separation range[J]. Laser & Optoelectronics Progress, 58, 0714007(2021).

    [6] Rong Y H, Shen X, Wang N C et al. Design of dual-wavelength spectral discriminator for high-spectral-resolution lidar[J]. Acta Optica Sinica, 41, 0401001(2021).

    [7] Li D J, Gao J H, Cui A J et al. Research on space-borne dual-wavelength land-sea LiDAR system with 2 m diffractive aperture[J]. Chinese Journal of Lasers, 49, 0310001(2022).

    [8] Laperle C, Svilans M, Poirier M et al. Microwave generation with monolithic dual-wavelength DFB lasers[C], 17-18(1997).

    [9] Han L S, Liang S, Zhou D B et al. Dual-wavelength distributed feedback laser for photonic microwave generation[C](2015).

    [10] Phelan R, Weldon V, Lynch M et al. Simultaneous multi-gas detection with cascaded strongly gain coupled DFB laser by dual wavelength operation[J]. Electronics Letters, 38, 31-32(2002).

    [11] Sun J, Dai Y T, Chen X F et al. Stable dual-wavelength DFB fiber laser with separate resonant cavities and its application in tunable microwave generation[J]. IEEE Photonics Technology Letters, 18, 2587-2589(2006).

    [12] Wai P K A, Chan L Y, Lui L et al. All-optical header processing using control signals generated by direct modulation of a DFB laser[J]. Optics Communications, 242, 155-161(2004).

    [13] Li S M, Li R M, Li L Y et al. Dual wavelength semiconductor laser based on reconstruction-equivalent-chirp technique[J]. IEEE Photonics Technology Letters, 25, 299-302(2013).

    [14] Zhang Y S, Yuan B C, Shi J Q et al. A stable dual-wavelength DFB semiconductor laser with equivalent chirped sampled grating[J]. IEEE Journal of Quantum Electronics, 58, 2200107(2022).

    [15] Li J S, Wang H, Chen X F et al. Experimental demonstration of distributed feedback semiconductor lasers based on reconstruction-equivalent-chirp technology[J]. Optics Express, 17, 5240-5245(2009).

    [16] Dai Y T, Chen X F, Xia L et al. Sampled Bragg grating with desired response in one channel by use of a reconstruction algorithm and equivalent chirp[J]. Optics Letters, 29, 1333-1335(2004).

    [17] Chen X F, Luo Y, Fan C C et al. Analytical expression of sampled Bragg gratings with chirp in the sampling period and its application in dispersion management design in a WDM system[J]. IEEE Photonics Technology Letters, 12, 1013-1015(2000).

    [18] Zhang Y S, Zheng J L, Shi Y C et al. Study on two-section DFB lasers and laser arrays based on the reconstruction equivalent chirp technique and their application in radio-over-fiber systems[J]. IEEE Journal of Selected Topics in Quantum Electronics, 21, 232-240(2015).

    [19] Shi Y C, Li S, Li J et al. An apodized DFB semiconductor laser realized by varying duty cycle of sampling Bragg grating and reconstruction-equivalent-chirp technology[J]. Optics Communications, 283, 1840-1844(2010).

    [20] Lo S K B, Ghafouri-Shiraz H. A method to determine the above-threshold stability of distributed feedback semiconductor laser diodes[J]. Journal of Lightwave Technology, 13, 563-568(1995).

    [21] Ferreira Fernandes C A. Single-mode yield in DFB laser diodes with reflecting facets[J]. Microwave and Optical Technology Letters, 48, 205-209(2006).

    Yunshan Zhang, Tongfei Zhao, Jianqin Shi, Lianyan Li, Yifan Xu, Tao Fang, Yongming Nie, Jilin Zheng, Hui Zou, Xiangfei Chen. Monolithic Integrated Two-Section Dual-Wavelength Distributed Feedback Semiconductor Laser[J]. Acta Optica Sinica, 2023, 43(10): 1014002
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