Frequency doubling in the enhancement cavity with single focusing mirror

被引:1
作者
Babin, SA [1 ]
Kablukov, SI [1 ]
Vlasov, AA [1 ]
机构
[1] Russian Acad Sci, Siberian Branch, Inst Automat & Electrometry, Novosibirsk 630090, Russia
来源
LASER OPTICS 2003: SOLID STATE LASERS AND NONLINEAR FREQUENCY CONVERSION | 2004年 / 5478卷
关键词
frequency conversion; SHG; enhancement cavity; UV; single frequency;
D O I
10.1117/12.560954
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Laser power enhancement cavities are usually applied for frequency doubling of continuous radiation in nonlinear crystals, because of relatively small available CW power. Besides, external cavities allow to produce single-frequency radiation. Four- or three-mirror ring cavity design with two focusing mirrors is usually used in experimental and theoretical studies as well as in applications. In these schemes the first curved mirror focuses a relatively wide beam into nonlinear crystal and the second one reproduces the original beam from divergent one, which comes out of the crystal. We propose the three-mirror cavity design with single curved mirror, which is used both for focusing and reproducing of the beam. Two additional flat mirrors allow to direct the beams into the crystal from and back to the focusing mirror and thus to close the ring cavity of triangle form. Calculations show that stability of the single-focusing-mirror cavity has larger tolerance for angles of the beam incidence at the curved mirror in comparison with traditional schemes and broader stability region. It is analogous to a two-mirror concentric cavity, but has advantages of a ring cavity at the same time. The compact cavity is experimentally realized for frequency doubling of 488 nm argon laser single frequency radiation in BBO crystal. Power enhancement achieved in the cavity is about 30 times. Thus 244 nm second harmonic power of 33 mW at 660 mW pump power is produced having about 10 m coherence length.
引用
收藏
页码:165 / 172
页数:8
相关论文
共 50 条
[31]   Effects of nonlinear optica polarity in anisotropic materials for frequency doubling [J].
Kim, Eung Soo .
JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2007, 51 (04) :1284-1289
[32]   Sodium guide star laser generation by single-pass frequency doubling in a periodically poled near-stoichiometric LiTaOcrystal [J].
YUAN Ye ;
ZHANG Lei ;
LIU YanHua ;
L XinJie ;
ZHAO Gang ;
FENG Yan ;
ZHU ShiNing .
Science China(Technological Sciences), 2013, (01) :125-128
[33]   97-μJ single frequency linearly polarized nanosecond pulsed laser at 775 nm using frequency doubling of a high-energy fiber laser system [J].
Fang, Qiang ;
Cui, Xuelong ;
Zhang, Zhuo ;
Qi, Liang ;
Shi, Wei ;
Li, Jinhui ;
Zhou, Guoqing .
OPTICAL ENGINEERING, 2017, 56 (08)
[34]   Resonant frequency doubling of phase-modulation-generated few-frequency fiber laser [J].
Zeng, Xin ;
Cui, Shuzhen ;
Cheng, Xin ;
Zhou, Jiaqi ;
Qi, Weiao ;
Feng, Yan .
OPTICS LETTERS, 2020, 45 (17) :4944-4947
[35]   Cavity Resonance-Enhanced Watt-Level Single Frequency 1240 nm Raman Laser [J].
Cao X. ;
Wei J. ;
Jin P. ;
Su J. ;
Lu H. .
Zhongguo Jiguang/Chinese Journal of Lasers, 2021, 48 (05)
[36]   Cavity Resonance-Enhanced Watt-Level Single Frequency 1240 nm Raman Laser [J].
Cao Xuechen ;
Wei Jiao ;
Jin Pixian ;
Su Jing ;
Lu Huadong .
CHINESE JOURNAL OF LASERS-ZHONGGUO JIGUANG, 2021, 48 (05)
[37]   Investigation of efficient self-frequency-doubling Nd:YAB lasers [J].
Bartschke, J ;
Knappe, R ;
Boller, KJ ;
Wallenstein, R .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1997, 33 (12) :2295-2300
[38]   Study on temperature adaptability extension of KTP frequency-doubling device [J].
Li Xiao-Ming ;
Shen Xue-Ju ;
Liu Xun ;
Wang Lin .
ACTA PHYSICA SINICA, 2015, 64 (09)
[39]   Efficient generation of a continuous-wave, tunable 780 nm laser via an optimized cavity-enhanced frequency doubling of 1.56 μm at low pump powers [J].
Guo, Shanlong ;
Wang, Junmin .
OPTICAL AND QUANTUM ELECTRONICS, 2017, 49 (01)
[40]   50.2W high stability and high compact all-solid-state green laser with extra-cavity frequency-doubling at 500 Hz [J].
Bai, Zhenxu ;
Chen, Meng ;
Jiang, Jing ;
Long, Mingliang ;
Chen, Liyuan ;
Li, Gang .
OPTICAL REVIEW, 2013, 20 (04) :303-307