Structural analysis of distributed Bragg reflector mirrors

被引:3
|
作者
Ratajczak, R. [1 ]
Gaca, J. [2 ]
Wojcik, W. [2 ]
Stonert, A. [1 ]
Pagowska, K. [1 ]
Borysiuk, J. [2 ]
Turos, A. [1 ,2 ]
机构
[1] Soltan Inst Nucl Studies, PL-05400 Otwock, Poland
[2] Inst Elect Mat Technol, PL-01919 Warsaw, Poland
关键词
Distributed Bragg Reflector mirrors; Structural analysis; RBS; TEM; HRXRD; COMPOUND SEMICONDUCTORS; SURFACE; DIFFRACTION; RESISTANCE; LASERS;
D O I
10.1016/j.vacuum.2009.01.049
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Quantum cascade (QC) lasers and vertical-cavity surface-emitting lasers (VCSELs) are of great interest due to their potential importance for a variety of device applications. Both kinds of lasers call for very highly reflective mirrors. Usually distributed Bragg reflector (DBR) mirrors, which consist of periodic quarter wavelength stacks of high and low refractive index compound semiconductors are used. These stacks are superlattices containing more than 40 individual layers. To obtain very high reflectivity DBRs alternating GaAs and AlAs layers are used for both the high and low index mirrors. GaAs/AlAs DBR structures containing 15 periods were characterized by the complementary use of RBS/channeling, TEM and HRXRD. Since the total thickness of a DBR exceeds 2 mu m the RBS analysis was performed at two He-ion energies: 1.7 MeV and 3.82 MeV. After some stopping power corrections TEM and RBS provided similar results. Discrepancies with HRXRD data were attributed to the lateral inhomogeneity of produced superlattice. Virtues and pitfalls of complementary use of these techniques were discussed. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:S148 / S151
页数:4
相关论文
共 50 条
  • [21] Edge-emitting InGaAs/GaAs lasers with deeply etched semiconductor/air distributed Bragg reflector mirrors
    Maximov, MV
    Ramushina, EM
    Skopina, VI
    Tanklevskaya, EM
    Solov'ev, VA
    Shernyakov, YM
    Kaiander, IN
    Kaliteevski, MA
    Gurevich, SA
    Ledentsov, NN
    Ustinov, VM
    Alferov, ZI
    Torres, CMS
    Bimberg, D
    SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 2002, 17 (11) : L69 - L71
  • [22] High conversion efficiency of second harmonic generation in a short nonlinear photonic crystal with distributed Bragg reflector mirrors
    Ren, Ming-Liang
    Li, Zhi-Yuan
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2012, 107 (01): : 71 - 76
  • [23] A Distributed Bragg Reflector Silicon Evanescent Laser
    Fang, Alexander W.
    Koch, Brian R.
    Jones, Richard
    Lively, Erica
    Liang, Di
    Kuo, Ying-Hao
    Bowers, John E.
    2008 5TH IEEE INTERNATIONAL CONFERENCE ON GROUP IV PHOTONICS, 2008, : 58 - 60
  • [24] Multiwavelength distributed Bragg reflector fibre laser
    Pradhan, S.
    Town, G. E.
    Grant, K. J.
    ELECTRONICS LETTERS, 2006, 42 (17) : 963 - 965
  • [25] Distributed Bragg reflector made of CdSe and ZnTe
    Polczynska, K. E.
    Sobczak, K.
    Pacuski, W.
    SUPERLATTICES AND MICROSTRUCTURES, 2020, 139
  • [26] DISTRIBUTED BRAGG REFLECTOR ACTIVE OPTICAL FILTERS
    TESSLER, N
    NAGAR, R
    EISENSTEIN, G
    SALZMAN, J
    KOREN, U
    RAYBON, G
    BURRUS, CA
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 1991, 27 (08) : 2016 - 2024
  • [27] A Distributed Bragg Reflector Silicon Evanescent Laser
    Fang, Alexander W.
    Koch, Brian R.
    Jones, Richard
    Lively, Erica
    Liang, Di
    Kuo, Ying-Hao
    Bowers, John E.
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2008, 20 (17-20) : 1667 - 1669
  • [28] PRINCIPLES OF DISTRIBUTED FEEDBACK AND DISTRIBUTED BRAGG-REFLECTOR LASERS
    WANG, S
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 1974, QE10 (04) : 413 - 427
  • [29] Analysis of reconfigurable mode six-section distributed Bragg reflector laser
    Zhang, Yiming
    Liu, Yu
    Xiao, Yaoping
    Shi, Zhan
    Zhu, Ninghua
    OPTICS COMMUNICATIONS, 2020, 473 (473)
  • [30] Mode transitions in distributed Bragg reflector semiconductor lasers: experiments, simulations and analysis
    Radziunas, M.
    Hasler, K-H
    Sumpf, B.
    Tran Quoc Tien
    Wenzel, H.
    JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 2011, 44 (10)