[1] 赵万芹, 梅雪松, 王文君. 超短脉冲激光微孔加工(下)——实验探索[J]. 红外与激光工程, 2019, 48(02): 129-140

Zhao Wanqin, Mei Xuesong, Wang Wenjun. Ultrashort pulse laser drilling of micro-holes (part 2)—experimental study [J]. Infrared and Laser Engineering, 2019, 48(2): 0242001. (in Chinese)
[2] 张佳茹, 管迎春. 超快激光制备生物医用材料表面功能微结构的现状及研究进展[J]. 中国光学, 2019, 12(02): 199-213 doi:  10.3788/co.20191202.0199

Zhang Jiaru, Guan Yingchun. Current status and research progress of surface functional microstructure of biomedical materials prepared by ultrafast laser [J]. Chinese Optics, 2019, 12(2): 199-213. (in Chinese) doi:  10.3788/co.20191202.0199
[3] 张国栋, 程光华, 张伟. 超快激光选区焊接技术研究进展[J]. 中国光学, 2020, 13(06): 1209-1223 doi:  10.37188/CO.2020-0131

Zhang Guodong, Cheng Guanghua, Zhang Wei. Research progress of ultrafast laser selective welding technology [J]. Chinese Optics, 2020, 13(6): 1209-1223. (in Chinese) doi:  10.37188/CO.2020-0131
[4] 苏亚辉, 秦天天, 许兵, 吴东. 飞秒激光双光子聚合方法加工图案化微透镜及其成像测试[J]. 光学精密工程, 2020, 28(12): 2629-2635 doi:  10.37188/OPE.20202812.2629

Su Yahui, Qin Tiantian, Xu Bing, et al. Fabrication and imaging of patterned microlens by femtosecond laser two-photon polymerization [J]. Optics and Precision Engineering, 2020, 28(12): 2629-2635. (in Chinese) doi:  10.37188/OPE.20202812.2629
[5] 苗飞, 张玲, 冯德军, 隋青美, 陈霄, 贾磊, 刘汉平, 刘辉兰. 应用800 nm飞秒激光制备长周期光纤光栅[J]. 光学精密工程, 2012, 20(04): 685-691 doi:  10.3788/OPE.20122004.0685

Miao Fei, Zhang Ling, Feng Dejun, et al. Long period fiber gratings were fabricated by 800 nm femtosecond laser [J]. Optics and Precision Engineering, 2012, 20(4): 685-691. (in Chinese) doi:  10.3788/OPE.20122004.0685
[6] Nejadmalayeri A H, Herman P R, Burghoff J, et al. Inscription of optical waveguides in crystalline silicon by mid-infrared femtosecond laser pulses [J]. Optics Letters, 2005, 30(9): 964-966. doi:  10.1364/OL.30.000964
[7] Kaemmer H, Matthaeus G, Nolte S, et al. In-volume structuring of silicon using picosecond laser pulses [J]. Applied Physics A, 2018, 124(4): 302. doi:  10.1007/s00339-018-1715-1
[8] Wang X, Yu X, Berg M, et al. Nanosecond laser writing of straight and curved waveguides in silicon with shaped beams [J]. Journal of Laser Applications, 2020, 32(2): 022002. doi:  10.2351/1.5139973
[9] Zazo R, Solis J, Sanchez-Gil J A, et al. Deep UV laser induced periodic surface structures on silicon formed by self-organization of nanoparticles [J]. Applied Surface Science, 2020, 520: 146307. doi:  10.1016/j.apsusc.2020.146307
[10] Gao Y F, Yu C Y, Han B, et al. Picosecond laser-induced periodic surface structures (LIPSS) on crystalline silicon [J]. Surfaces and Interfaces, 2020, 19: 100538.
[11] Ji L, Lv X, Wu Y, et al. Hydrophobic light-trapping structures fabricated on silicon surfaces by picosecond laser texturing and chemical etching [J]. Journal of Photonics for Energy, 2015, 5(1): 053094. doi:  10.1117/1.JPE.5.053094
[12] Taylor L L, Scott R E, Jie Q. Integrating two-temperature and classical heat accumulation models to predict femtosecond laser processing of silicon [J]. Optical Materials Express, 2018, 8(3): 648. doi:  10.1364/OME.8.000648
[13] Tsibidis G D, Stratakis E, Aifantis K E. Thermoplastic deformation of silicon surfaces induced by ultrashort pulsed lasers in submelting conditions [J]. Journal of Applied Physics, 2012, 111(5): 701.
[14] 李志明, 聂劲松, 胡瑜泽, 等. 高频飞秒激光对硅材料烧蚀的热积累效应[J]. 激光与红外, 2017, 47(4): 6

Li Zhiming, Nie Jinsong, Hu Yuze, et al. Heat accumulation effect of high frequency femtosecond laser on silicon ablation [J]. Laser & Infrared, 2017, 47(4): 410-415. (in Chinese)
[15] Mao S S, Mao X L, Greif R, et al. Simulation of infrared picosecond laser-induced electron emission from semi-conductors[J]. Applied Surface Science, 1998, 127-129: 206-211.
[16] Tsibidis G D, Barberoglou M, Loukakos P A, et al. Dynamics of ripple formation on silicon surfaces by ultrashort laser pulses in subablation conditions[J]. Physical Review B, 2012, 86: 115316.
[17] Jellison G E. Optical absorption of silicon between 1.6 and 4.7 eV at elevated temperatures [J]. Applied Physics Letters, 1982, 41(2): 180-182. doi:  10.1063/1.93454
[18] Boggess T, Bohnert K M, Mansour K, et al. Simultaneous measurement of the two-photon coefficient and free-carrier cross section above the bandgap of crystalline silicon [J]. IEEE Journal of Quantum Electronics, 1986, 22(2): 360-368. doi:  10.1109/JQE.1986.1072964
[19] Svantesson K G, Nilsson N G. Determination of the temperature-dependence of the free carrier and interband absorption in silicon AT 1.06 MU-M [J]. Journal of Physics C Solid State Physics, 1979, 12(18): 3837-3842. doi:  10.1088/0022-3719/12/18/029
[20] Shao J, Jin G, Wang T. Theoretical research on damage mechanism of ultrafast laser ablation crystal silicon [C]// International Symposium on Photoelectronic Detection and Imaging 2013: High Power Lasers and Applications. International Society for Optics and Photonics, 2013.
[21] Felice G, Jijil J N, Rosalba F , et al. Analysis of nascent silicon phase-change gratings induced by femtosecond laser irradiation in vacuum [J]. Scientific Reports, 2018, 8(1): 12498.
[22] Mahmoud A M, Liberal I, Engheta N, et al. Dipole-dipole interactions mediated by epsilon-and-mu-near-zero waveguide supercoupling [J]. Optical Materials Express, 2017, 7(2): 415-424. doi:  10.1364/OME.7.001096
[23] Derrien J Y, Bulgakova N M. Modeling of silicon in femtosecond laser-induced modification regimes: Accounting for ambipolar diffusion [C]//Society of Photo-optical Instrumentation Engineers. International Society for Optics and Photonics, 2017.