Multi-wavelength High Efficiency Laser System for Lidar Applications

被引:0
|
作者
Willis, Christina C. C. [1 ]
Culpepper, Charles [1 ]
Burnham, Ralph [1 ]
机构
[1] Fibertek Inc, Herndon, VA 20171 USA
关键词
Blue; Lidar; HSRL; Optical Parametric Oscillator; Sum-Frequency Mixing; BLUE LASER; ND;
D O I
10.1117/12.2191727
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Motivated by the growing need for more efficient, high output power laser transmitters, we demonstrate a multi-wavelength laser system for lidar-based applications. The demonstration is performed in two stages, proving energy scaling and nonlinear conversion independently for later combination. Energy scaling is demonstrated using a 1064 nm MOPA system which employs two novel ceramic Nd:YAG slab amplifiers, the structure of which is designed to improve the amplifier's thermal performance and energy extraction via three progressive doping stages. This structure improved the extraction efficiency by 19% over previous single-stage dopant designs. A maximum energy of 34 mJ was produced at 500 Hz with a 10.8 ns pulse duration. High efficiency non-linear conversion from 1064 nm to 452 nm is demonstrated using a KTP ring OPO with a BBO intra-cavity doubler pumped with 50 Hz, 16 ns 1064 nm pulses. The OPO generates 1571 nm signal which is frequency doubled to 756 nm by the BBO. Output 786 nm pulses are mixed with the 1064 nm pump pulses to generate 452 nm. A conversion efficiency of 17.1% was achieved, generating 3 mJ of 452 nm pulses of 7.8 ns duration. Pump power was limited by intra-cavity damage thresholds, and in future experiments we anticipate >20% conversion efficiency.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Multi-Wavelength Lidar for Remote Sensing Applications
    Song, Shalei
    Li, Pingxiang
    Gong, Wei
    Zhang, Liangpei
    Chen, Tao
    EARTH OBSERVING SYSTEMS XIII, 2008, 7081
  • [2] Multi-wavelength lidar
    Baranov, VY
    Meshevov, VS
    Maluta, DD
    Petrushevich, YN
    Poliakov, GA
    Khahlev, AA
    ENVIRONMENTAL ASPECTS OF CONVERTING CW FACILITIES TO PEACEFUL PURPOSES, 2002, 37 : 159 - 167
  • [3] A high repetition rate multi-wavelength polarized solid state laser source for long range LIDAR applications
    Sudheer, S. K.
    Mahadevan Pillai, V. P.
    Nayar, V. U.
    LIDAR REMOTE SENSING FOR ENVIRONMENTAL MONITORING VII, 2006, 6409
  • [4] Multi-wavelength dye laser system
    Tang, Xingli
    Shangguen, Cheng
    Lin, Yingyi
    Yu, Kaiyi
    Dou, Airong
    Wang, Yiman
    Sun, Guohua
    Jiang, Sengli
    Wang, Wei
    Qian, Yulan
    Guangxue Xuebao/Acta Optica Sinica, 1992, 12 (08): : 684 - 687
  • [5] A Multi-wavelength IR Laser for space applications
    Li, Steven X.
    Yu, Anthony W.
    Sun, Xiaoli
    Fahey, Molly E.
    Numata, Kenji
    Krainak, Michael A.
    LASER RADAR TECHNOLOGY AND APPLICATIONS XXII, 2017, 10191
  • [6] Mid-infrared multi-wavelength source for lidar applications
    Geiger, AR
    Degtiarev, EV
    Farr, WH
    Richmond, RD
    LASER RADAR TECHNOLOGY AND APPLICATIONS III, 1998, 3380 : 63 - 69
  • [7] High efficiency diode pumped Er:YLF laser with multi-wavelength generation
    Inochkin, Mikhail
    Khloponin, Leonid
    Khramov, Valery
    Altshuler, Gregory
    Erofeev, Andrey
    Wilson, Stewart
    Feldchtein, Felix
    SOLID STATE LASERS XXI: TECHNOLOGY AND DEVICES, 2012, 8235
  • [8] A novel portable multi-wavelength laser system
    Charlton, A.
    Dickinson, B.
    LASERS IN THE CONSERVATION OF ARTWORKS, PROCEEDINGS, 2007, 116 : 641 - 647
  • [9] Multi-wavelength laser system propagation experiments
    Steinvall, Ove
    Sjoqvist, Lars
    Kullander, Fredrik
    Berglund, Folke
    Larsson, Tomas
    Karlsson, Kjell
    TECHNOLOGIES FOR OPTICAL COUNTERMEASURES III, 2006, 6397
  • [10] Mobile multi-wavelength aerosol lidar
    Gritsuta, A. N.
    Klimkin, A. V.
    Kokhanenko, G. P.
    Kuryak, A. N.
    Osipov, K. Yu.
    Ponomarev, Yu. N.
    Simonova, G. V.
    INTERNATIONAL JOURNAL OF REMOTE SENSING, 2018, 39 (24) : 9400 - 9414