• Chinese Journal of Lasers
  • Vol. 50, Issue 7, 0701007 (2023)
Zhipeng Pan1、2, Wei Li1、*, Lü Jiagang1、2, Jinyuan Chang1、2, Zhennuo Wang1、2, Suping Liu1, Li Zhong1, and Xiaoyu Ma1、2
Author Affiliations
  • 1National Engineering Research Center for Optoelectronic Devices, Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China
  • 2College of Materials Science and Optoelectronic Technology, University of Chinese Academy of Sciences,Beijing 100049, China
  • show less
    DOI: 10.3788/CJL221034 Cite this Article Set citation alerts
    Zhipeng Pan, Wei Li, Lü Jiagang, Jinyuan Chang, Zhennuo Wang, Suping Liu, Li Zhong, Xiaoyu Ma. Reflection Characteristics Analysis of DBR in 940 nm VCSEL[J]. Chinese Journal of Lasers, 2023, 50(7): 0701007 Copy Citation Text show less
    References

    [1] Yu H Y, Yao S, Zhang H M et al. Design and fabrication of 940 nm vertical-cavity surface-emitting lasers[J]. Acta Physica Sinica, 68, 064207(2019).

    [2] Pan Z P, Li W, Qi Y X et al. Design and analysis of photonic crystal vertical-cavity surface-emitting lasers[J]. Acta Optica Sinica, 42, 1414002(2022).

    [3] Yan W N, Wang Q H, Zhou H J et al. Oxidation-confined structure 940 nm vertical cavity surface emitting laser[J/OL]. Laser & Optoelectronics Progress, 1-14. http://kns.cnki.net/kcms/detail/31.1690.TN.20220722.1949.022.html

    [4] Xun M, Pan G Z, Zhao Z Z et al. Analysis of thermal properties of 940-nm vertical cavity surface emitting laser arrays[J]. IEEE Transactions on Electron Devices, 68, 158-163(2021).

    [5] Khan Z, Ledentsov N, Chorchos L et al. Single-mode 940 nm VCSELs with narrow divergence angles and high-power performances for fiber and free-space optical communications[J]. IEEE Access, 8, 72095-72101(2020).

    [6] Iga K, Koyama E[M]. Fundamentals and applications of surface emitting lasers. Zheng J, Transl(2002).

    [7] Ma L N, Guo X, Gai H X et al. Simulation analysis on low resistance p-type DBR structure[J]. Semiconductor Technology, 30, 56-59(2005).

    [8] Li P F, Deng J, Chen Y Y et al. Optimization design of vertical cavity surface emitting lasers DBR[J]. Semiconductor Optoelectronics, 34, 190-192(2013).

    [9] Xu X F, Deng J, Li J J et al. Growth optimization of vertical cavity surface-emitting laser DBR[J]. Semiconductor Optoelectronics, 43, 332-336(2022).

    [10] Wang X D, Wu X M, Wang Q et al. Optical characteristics of DBR with inhomogeneous graded interfaces[J]. Acta Physica Sinica, 55, 4983-4986(2006).

    [11] Wang X D, Wu X M, Wang Q et al. Numerical analysis of the effect of a DBR with graded interfaces on the resonant cavity of a VCSEL[J]. Chinese Journal of Semiconductors, 27, 2011-2014(2006).

    [12] Zhang G J, Shu Y C, Pi B et al. Reflectance spectrum simulation and optimized growth of AlAs/GaAs distributed Bragg reflector(DBR)[J]. Journal of Synthetic Crystals, 34, 977-981(2005).

    [13] Li T, Ning Y Q, Hao E J et al. Design and optimization of DBR in 980 nm bottom-emitting VCSEL[J]. Science in China Series F: Information Sciences, 52, 1266-1271(2009).

    [14] Cheng C L, Ledentsov N, Agustin M et al. Ultra-fast Zn-diffusion/oxide-relief 940 nm VCSELs[C](2019).

    [15] Qi Y X, Li W, Liu S P et al. Optimized arrangement of vertical cavity surface emitting laser arrays to improve thermal characteristics[J]. Journal of Applied Physics, 126, 193101(2019).

    [16] Li W, Qi Y X, Liu S P et al. High power density and temperature stable vertical-cavity surface-emitting laser with a ring close packing structure[J]. Optics & Laser Technology, 132, 106510(2020).

    [17] Qi Y X, Wei L, Liu S P et al. Comprehensive design and simulation of a composite reflector for mode control and thermal management of a high-power VCSEL[J]. Journal of the Optical Society of America B, 37, 3487-3495(2020).

    [18] Afromowitz M A. Refractive index of Ga1-xAlxAs[J]. Solid State Communications, 15, 59-63(1974).

    [19] Adachi S. GaAs, AlAs, and AlxGa1-xAs: material parameters for use in research and device applications[J]. Journal of Applied Physics, 58, R1-R29(1985).

    [20] Djurisic A B, Rakic A D, Li E H et al. Continuous optimization using elite genetic algorithms with adaptive mutations[M]. McKay B, Yao X, Newton C S, et al. Simulated evolution and learning, 1585, 365-372(1999).

    [21] Wang H, Li Y P. An eigen matrix method for obtaining the band structure of photonic crystals[J]. Acta Physica Sinica, 50, 2172-2178(2001).

    [22] Wang Y H, Bao B X. Optical analysis and optimization of lossless and lossy distributed Bragg reflector using transfer matrix method[J]. Chinese Journal of Luminescence, 34, 184-191(2013).

    [23] Ma H X, Wu Y J, Wang J M et al. Reflection characteristics of multilayer dielectric film based on transfer matrix method[J]. College Physics, 39, 25-30(2020).

    [24] Keskar D, Survase S, Thakurdesai M. Reflectivity simulation by using transfer matrix method[J]. Journal of Physics: Conference Series, 1913, 012051(2021).

    [25] Ghatak A, Thyagarajan K, Shenoy M. Numerical analysis of planar optical waveguides using matrix approach[J]. Journal of Lightwave Technology, 5, 660-667(1987).

    Zhipeng Pan, Wei Li, Lü Jiagang, Jinyuan Chang, Zhennuo Wang, Suping Liu, Li Zhong, Xiaoyu Ma. Reflection Characteristics Analysis of DBR in 940 nm VCSEL[J]. Chinese Journal of Lasers, 2023, 50(7): 0701007
    Download Citation