[1] Danson C N, Haefner C, Bromage J, et al. Petawatt and exawatt class lasers worldwide [J]. High Power Laser Science and Engineering, 2019, 7(3): e54.
[2] Bagnoud V, Hornung J, Afshari M, et al. Implementation of a phase plate for the generation of homogeneous focal-spot intensity distributions at the high-energy short-pulse laser facility PHELIX [J]. High Power Laser Science and Engineering, 2019, 7(4): e62.
[3] Galletti M, Oliveira P, Galimberti M, et al. Ultra-broadband all-OPCPA petawatt facility fully based on LBO [J]. High Power Laser Science and Engineering, 2020, 8(4): e31.
[4] Jiang T, Gao S, Tian Z N, et al. Fabrication of diamond ultra-fine structures by femtosecond laser [J]. Chinese Optics Letters, 2020, 18(10): 101402. doi:  10.3788/COL202018.101402
[5] Cheng Y, Liu X, Tan C Y, et al. Research and development of spaceborne solid state laser technology for laser altimeter [J]. Infrared and Laser Engineering, 2020, 49(11): 20201046. (in Chinese)
[6] Shu R, Huang G H, Kong W. Development and review of space-based laser altimetry technology [J]. Infrared and Laser Engineering, 2020, 49(11): 20201047. (in Chinese)
[7] Huang J C, Wang L K, Duan Y F, et al. All-fiber-based laser with 200 mHz linewidth [J]. Chinese Optics Letters, 2019, 17(7): 071407. doi:  10.3788/COL201917.071407
[8] Jia Y C, Chen F. Compact solid-state waveguide lasers operating in the pulsed regime: a review [J]. Chinese Optics Letters, 2019, 17(1): 012302. doi:  10.3788/COL201917.012302
[9] Wang J L, Zhao K Q, Feng T, et al. 1.5 J high-beam-quality Nd: LuAG ceramic active mirror laser amplifier [J]. Chinese Optics Letters, 2020, 18(2): 021401.
[10] Bullock K T, DeYoung R J, Sandford S P. Angular alignment testing of laser mirror mounts under temperature cycling [J]. NASA Technical Reports Server, 1997, 3661: 1-17.
[11] Jacobs S F. Variable invariables: dimensional instability with time and temperature [C]//Critical Review Collection, 2017.
[12] Baskaran R, Sivakumar P, Arivuoli D. Dimensional stability of mirror materials for opto-mechanical reference systems [J]. International Journal of Physical Sciences, 2013, 8(19): 997-1004. doi:  10.5897/IJPS2013.3810
[13] Leahy Z N, Magner A J, Hatheway A E. Athermal mounting of optics in metallic housings [C]//Proceedings of SPIE-Optomechanical Engineering, 2013, 8836: 88360P.
[14] Pijnenburg J, Voert M J A T, Vreugd J D, et al. Ultra-stable isostatic bonded optical mount design for harsh environments [C]//Proceedings of SPIE-The International Society for Optical Engineering, 2012, 8450: 27.
[15] Dewitt F. A novel mirror-mount design suitable for laboratory and OEM applications [C]//Proceedings of SPIE, 2018, 10747: 107470D.
[16] Kvamme E T, Sullivan M T. A small low-stress stable 3-DOF mirror mount with one arc-second tip/tilt resolution [C]//Proceedings of SPIE-The International Society for Optical Engineering, 2004, 5528: 264-271.
[17] Kautz M, Close L M, Males J R. A locking clamp that enables high thermal and vibrational stability for kinematic optical mounts [C]//Proceedings of SPIE, 2018, 10703: 107032Q.
[18] Furse J E. Kinematic design of fine mechanisms in instruments [J]. Journal of Physics E Scientific Instruments, 1981, 14(3): 264. doi:  10.1088/0022-3735/14/3/001
[19] Tapply J K. Optical testing technique for the evaluation of mechanical mount thermal stability [C]//Proceedings of SPIE, 1999, 3786: 386-394.
[20] Wang D H, Zhao J, Zhao X Q, et al. Measurement and analysis on structure stability of optical mirror mounts with small aperture [J]. Chinese Journal of Lasers, 2010, 37(S1): 308-311. (in Chinese)
[21] Zhang C, Tang G X, Liu Z G, et al. Research on structural stability of adjustable support mount in laser system [J]. Chinese Journal of Lasers, 2020, 47(10): 1001002. (in Chinese) doi:  10.3788/CJL202047.1001002