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Volume 40 Issue 1
Nov.  2015
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Analysis of wavelength-tunable DFB laser based on GaN in communication band

  • Corresponding author: HU Fangren, hufr@njupt.edu.cn
  • Received Date: 2014-11-20
    Accepted Date: 2014-12-09
  • In order to control laser wavelengths output of laser by suspending period-adjustable gratings, a structure combining microdriver of micro-electro-mechanical system(MEMS) technology with grating of distributed feedback (DFB) laser was proposed. According to rigorous coupled-wave theory (RCWA) and medium slab waveguide theory, using infinite element software COMSOL, a two-dimensional steady physical model of wavelength-adjustable DFB laser based on GaN was constructed for C-band in optical communication. 2-D electric field mode picture and lasing wavelength linewidth picture at 1550nm were analyzed and the corresponding relationship between grating period and lasing wavelength was gotten. The results show that, with certain structural parameters such as grating lattice thickness, height and gain layer thickness, lasing wavelength and grating period present similar linear relationships being consistent with theoretical analysis. The study will give good theoretical guidance for carrying out the design and preparation of the device.
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  • [1]

    GAUDINO R, CURRI V,BOSCO G, et al. On the use of DFB lasers for coherent PON[C]//Optical Fiber Communication Conference and Exposition. New York,USA:IEEE,2012:1-3.
    [2]

    LIAO P, MO Sh W. 1310nm/1550nm semiconductor laser power supply for the optical fiber measurement[J]. Laser Technology, 2013, 37(4):541-546(in Chinese).
    [3]

    ZHAI Y J, FU Y F, DONG X G. Research on the modulation characteristics of external cavity tunable lasers[J]. Study of Optical Communications, 2014, 40(5):48-51(in Chinese).
    [4]

    YASHIKI K, SATO K, MORIMOTO T, et al. Wavelength-selectable light sources fabricated using advanced microarray-selective epitaxy[J].IEEE Photonics Technology Letters, 2004, 16(7):1619-1621.
    [5]

    SASAHATA Y, MATSUMOTO K, NAGIRA T, et al.Tunable 16 DFB laser array with unequally spaced passive waveguides for backside wavelength monitor[C]//Optical Fiber Communications Conference and Exhibition. New York,USA:IEEE, 2014:1-3.
    [6]

    OOHASHI H, NUNOYA N, ISHⅡ H. Tunable semiconductor lasers for optical communications[C]//Optical Fiber Communication Conference. New York,USA:IEEE, 2012:521-522.
    [7]

    BERGER J D, ZHANG Y W, GRADE J D, et al. Widely tunable external cavity diode laser using a MEMS electrostatic rotary actuator[C]//Optical Fiber Communication Conference and Exhibit, 2001. New York,USA:IEEE, 2001:198-199.
    [8]

    GEERLINGS E, RATTUNDE M, SCHMITZ J, et al. Micro-mechanical external-cavity laser with wide tuning range[C]//IEEE 20th International Conference on Micro Electro Mechanical Systems, 2007. New York,USA:IEEE, 2007:731-734.
    [9]

    YE J Sh, KANAMORI Y, HU F R, et al.Self-supported subwavelength gratings with a broad band of high reflectance analysed by the rigorous coupled-wave method[J].Journal of Modern Optics, 2006, 53(14):1995-2004.
    [10]

    HU F R, KANAMORI Y, OCHI K, et al. A 100nm thick InGaN/GaN multiple quantum-well column-crystallized thin film deposited on Si(111) substrate and its micromachining[J].Journal of Micromechanics and Microengineering,2008,19(3):1-4.
    [11]

    YE J Sh, YOSHIAKI K, HU F R, et al. Narrow-band tunable optical filters using the self-suspended subwavelengthgrating[J].Journal of Modern Optics, 2007, 54(6):827-832.
    [12]

    WANG Y Q, ZHU B, HU F R. Simulation analysis of silicon based GaN wavelength tunable DFB laser[J]. Laser Infrared, 2014, 44(8):874-878(in Chinese).
    [13]

    SAMESHIMA H, TANAE T, HANE K. A GaN electromechanical tunable grating on Si substrate[J].IEEE Photonics Technology Letters, 2011, 23(5):281-284.
    [14]

    KOGELNIK H, SHANK C V. Coupled-wave theory of distributed feedback lasers[J].Journal of Applied Physics, 1972, 43(5):2327-2335.
    [15]

    BARKER A S, ILEGEMS M. Infrared lattice vibrations and free-electron dispersion inGaN[J].Physical Review, 1973, B7(2):741-749.
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Analysis of wavelength-tunable DFB laser based on GaN in communication band

    Corresponding author: HU Fangren, hufr@njupt.edu.cn
  • 1. College of Photoelectronic Engineering, Nanjing University of Posts and Communications, Nanjing 210046, China

Abstract: In order to control laser wavelengths output of laser by suspending period-adjustable gratings, a structure combining microdriver of micro-electro-mechanical system(MEMS) technology with grating of distributed feedback (DFB) laser was proposed. According to rigorous coupled-wave theory (RCWA) and medium slab waveguide theory, using infinite element software COMSOL, a two-dimensional steady physical model of wavelength-adjustable DFB laser based on GaN was constructed for C-band in optical communication. 2-D electric field mode picture and lasing wavelength linewidth picture at 1550nm were analyzed and the corresponding relationship between grating period and lasing wavelength was gotten. The results show that, with certain structural parameters such as grating lattice thickness, height and gain layer thickness, lasing wavelength and grating period present similar linear relationships being consistent with theoretical analysis. The study will give good theoretical guidance for carrying out the design and preparation of the device.

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