Cryogenic ultra-high power infra-red diode laser bars

被引:10
|
作者
Crump, P. [1 ]
Frevert, C. [1 ]
Hoesler, H. [1 ]
Bugge, F. [1 ]
Knigge, S. [1 ]
Pittroff, W. [1 ]
Erbert, G. [1 ]
Traenkle, G. [1 ]
机构
[1] Leibniz Inst Hochstfrequenztech, Ferdinand Braun Inst, D-12489 Berlin, Germany
来源
关键词
diode lasers; high power; high efficiency; low temperature; pump laser; HIGH-EFFICIENCY; YB/YAG;
D O I
10.1117/12.2041279
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
GaAs-based high power diode lasers are the most efficient source of optical energy, and are in wide use in industrial applications, either directly or as pump sources for other laser media. Increased output power per laser is required to enable new applications (increased optical power density) and to reduce cost (more output per component leads to lower cost in $/W). For example, laser bars in the 9xx nm wavelength range with the very highest power and efficiency are needed as pump sources for many high-energy-class solid-state laser systems. We here present latest performance progress using a novel design approach that leverages operation at temperatures below 0 degrees C for increases in bar power and efficiency. We show experimentally that operation at -55 degrees C increases conversion efficiency and suppresses thermal rollover, enabling peak quasi-continuous wave bar powers of P-out > 1.6 kW to be achieved (1.2 ms, 10 Hz), limited by the available current. The conversion efficiency at 1.6 kW is 53%. Following on from this demonstration work, the key open challenge is to develop designs that deliver higher efficiencies, targeting > 80% at 1.6 kW. We present an analysis of the limiting factors and show that low electrical resistance is crucial, meaning that long resonators and high fill factor are needed. We review also progress in epitaxial design developments that leverage low temperatures to enable both low resistance and high optical performance. Latest results will be presented, summarizing the impact on bar performance and options for further improvements to efficiency will also be reviewed.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Cryolaser: innovative cryogenic diode laser bars optimized for emerging ultra-high power laser applications
    Crump, P.
    Frevert, C.
    Wenzel, H.
    Bugge, F.
    Knigge, S.
    Erbert, G.
    Traenkle, G.
    2013 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2013,
  • [2] Progress in High Power Diode Laser Pumps for High-Energy Class Mid Infra-Red Lasers
    Arslan, S.
    Maassdorf, A.
    Martin, D.
    Kreutzmann, S.
    Crump, P. A.
    2021 ANNUAL CONFERENCE OF THE IEEE PHOTONICS SOCIETY (IPC), 2021,
  • [3] A CALORIMETER FOR INFRA-RED LASER POWER MEASUREMENT
    KELLOCK, HA
    JOURNAL OF PHYSICS E-SCIENTIFIC INSTRUMENTS, 1969, 2 (04): : 377 - &
  • [4] Shape of infra-red & ultra-high frequency absorption in dielectrics and variation of loss angle
    Bera, NC
    DISORDERED MATERIALS - CURRENT DEVELOPMENTS -, 1996, 223 : 293 - 296
  • [5] Advancements of Ultra-High Peak Power Laser Diode Arrays
    Crawford, D.
    Thiagarajan, P.
    Goings, J.
    Caliva, B.
    Smith, S.
    Walker, R.
    HIGH-POWER DIODE LASER TECHNOLOGY XVI, 2018, 10514
  • [6] AN INFRA-RED PRISM SPECTROMETER OF HIGH RESOLVING POWER
    NIELSEN, JR
    CRAWFORD, FW
    SMITH, DC
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1947, 37 (04) : 296 - 301
  • [7] PULSED INFRA-RED DIODE EMITTER DRIVE
    BONIFACE, R
    ELECTRONIC ENGINEERING, 1978, 50 (610): : 24 - 24
  • [8] INTERNAL MODULATION OF INFRA-RED LASER
    MUSTEL, YR
    PARYGIN, VN
    SOLOMATI.VS
    RADIO ENGINEERING AND ELECTRONIC PHYSICS-USSR, 1966, 11 (12): : 1984 - &
  • [9] Ultra-high sensitivity infra-red detection and temperature effects in a graphene-tellurium nanowire binary hybrid
    Pradhan, Avradip
    Roy, Ahin
    Tripathi, Shalini
    Som, Anirban
    Sarkar, Depanjan
    Mishra, Jayanta Kumar
    Roy, Kallol
    Pradeep, T.
    Ravishankar, N.
    Ghosh, Arindam
    NANOSCALE, 2017, 9 (27) : 9284 - 9290
  • [10] A LOW POWER INFRA-RED MICROSCOPE
    KELLY, TSB
    BRITISH JOURNAL OF OPHTHALMOLOGY, 1948, 32 (07) : 396 - 397