Laser diode optical output dependence on junction temperature for high-power laser systems

被引:5
|
作者
Butt, Nathaniel J. [1 ]
Roberts, Rory A. [2 ]
Patnaik, Soumya S. [1 ]
机构
[1] 1950 5th St,B20018D RD201, Wright Patterson AFB, OH 45433 USA
[2] Wright State Univ, 3640 Colonel Glenn Hwy, Dayton, OH 45435 USA
来源
OPTICS AND LASER TECHNOLOGY | 2020年 / 125卷 / 125期
关键词
Laser diode; Threshold current; Slope efficiency; Junction temperature; High power laser system; Optical power; MU-M; WAVELENGTH; TRANSIENT;
D O I
10.1016/j.optlastec.2019.106019
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Laser diode optical output is studied and modeled. Four major diode parameters (threshold current, slope efficiency, central wavelength of output, and full-width half maximum of output), which are dependent on diode junction temperature, determine the optical output. The physics and equations representative thereof for each parameter are presented and incorporated into a multiphysics model of a high-power laser system (HPLS) to study the optical power/thermal interactions. Simulations are compared to show how optical power output of an HPLS changes when the temperature dependence of parameters are and are not accounted for in the model. The decrease in laser light intensity out of the HPLS as junction temperature changes is also studied. Intensity is sometimes a more important consideration than optical power because for most applications, laser light is only effective when the output power is focused over a very narrow wavelength range. The research provides higher fidelity diode modeling for effectively understanding optical/thermal interactions and the price to be paid for improper diode thermal management. The research supports our main goal of more accurately representing the thermal loads from the individual components of an HPLS.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] High-power laser diode packaging and applications
    Steegmüller, U
    Friepes, K
    Kühnelt, M
    Pammer, W
    Maric, J
    Morgott, S
    Schwarz, T
    Singer, F
    GLASS SCIENCE AND TECHNOLOGY, 2005, 78 : 90 - 95
  • [22] HIGH-POWER DIODE-LASER ARRAYS
    ENDRIZ, JG
    VAKILI, M
    BROWDER, GS
    DEVITO, M
    HADEN, JM
    HARNAGEL, GL
    PLANO, WE
    SAKAMOTO, M
    WELCH, DF
    WILLING, S
    WORLAND, DP
    YAO, HC
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 1992, 28 (04) : 952 - 965
  • [23] Measuring high-power diode laser efficiency
    Cromer, CL
    PHOTONICS SPECTRA, 2005, 39 (01) : 118 - 120
  • [24] Amplified luminescence and output characteristics of high-power InGaAs/AlGaAs laser diode array
    Kabanov, V. V.
    Lebiadok, Y. V.
    Ramanenka, A. A.
    Ryabtsev, A. G.
    Ryabtsev, G. I.
    Shchemelev, M. A.
    Mehta, S. K.
    QUANTUM ELECTRONICS, 2011, 41 (02) : 95 - 98
  • [25] Random fiber laser directly pumped by a high-power laser diode
    Babin, S. A.
    Dontsova, E. I.
    Kablukov, S. I.
    OPTICS LETTERS, 2013, 38 (17) : 3301 - 3303
  • [26] OPTICAL DISTORTION BY HEATED WINDOWS IN HIGH-POWER LASER SYSTEMS
    SPARKS, M
    JOURNAL OF APPLIED PHYSICS, 1971, 42 (12) : 5029 - &
  • [27] Optical materials for high-power laser systems and displays.
    Keszler, DA
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2001, 221 : U693 - U693
  • [28] AlGaInN laser diode bars for high-power, optical integration and quantum technologies
    Najda, S. P.
    Perlin, P.
    Suski, T.
    Marona, L.
    Stanczyk, S.
    Wisniewski, P.
    Czernecki, R.
    Schiavon, D.
    Leszczynski, M.
    HIGH-POWER, HIGH-ENERGY, AND HIGH-INTENSITY LASER TECHNOLOGY III, 2017, 10238
  • [29] Vector Rayleigh Diffraction of High-Power Laser Diode Beam in Optical Communication
    Xu, Qiang
    Li, Renxian
    Zhang, Yuanyuan
    Han, Yiping
    Wu, Zhensen
    INTERNATIONAL JOURNAL OF OPTICS, 2020, 2020
  • [30] Design of High-power Diode Laser Driver under High-temperature Environment
    Zhou, Guanjun
    Zhang, Xuesong
    Cai, Jun
    2012 INTERNATIONAL CONFERENCE ON OPTOELECTRONICS AND MICROELECTRONICS (ICOM), 2012, : 142 - 145