1)Tunable 7-12 μm picosecond optical parametric amplifier based on LiInSe2mid-infrared crystal,Opt. lett.42,2098-2101(2017).
2)Picosecond mid-infrared optical parametric amplifier based on LiInSe2 with tunability extending from 3.6 to 4.8 μm, Opt. Express 25, 12860-12866 (2017).
3)20 W picosecond laser output at 1342 nm based on an in-band pumped Nd:YVO4 Innoslab amplifier , Laser Phys. Lett., Vol.13, pp.035401 (2017).
4)2.14 mW deep-ultraviolet laser at 165 nm by eighth-harmonic generation of a 1319 nm Nd:YAG laser in KBBF, Laser Phys. Lett., Vol.13, pp.035401 (2016).
5)Theoretical analysis of self-frequency doubling in a high-power longitudinally diode-pumped Nd:YCOB laser, Journal of the Optical Society of America B,Vol. 33, No. 6, pp.1169 (2016).
6)Experimental and Theoretical Investigation of Pump Laser Induced Thermal Damage for Polycrystalline Ceramic and Crystal Nd:YAG, IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, Vol. 21, No. 1, 1602408 (2015).
7)167.75 nm vacuum-ultraviolet picosecond laser by eighth-harmonic generation of a 1342 nm Nd:YVO4 amplifier in KBBF, OPTICS LETTERS, Vol.40, No.14, pp.3268 (2015).
8)7.6 W 1342 nm passively mode-locked picosecond composite Nd:YVO4/YVO4 laser with a semiconductor saturable absorber mirror, Applied Optics, Vol. 54, No. 15, pp.3389 (2015).
9)0.95 W high-repetition-rate, picosecond 335 nm laser based on a frequency quadrupled diode-pumped Nd:YVO4 MOPA system, Applied Optics, Vol. 54, No. 20, pp.6182 (2015).
10) Comparison of laser induced thermal fracture between Polycrystalline ceramic and crystal Nd:YAG”, OPTICS LETTERS, April 15, Vol. 39, No. 8, pp.1965 (2014).
11) Narrow Linewidth 177.3-nm Nanosecond Laser With High Efficiency and High Power," IEEE Photonics Technology Letters, VOL. 26, NO. 10, pp.980 (2014).
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