[1] Guirlet R, Villegas D, Parisota T, et al. Anomalous transport of light and heavy impurities in Tore Supra sawtooth-free ohmic plasmas [J]. Nuclear Fusion, 2009, 49(5): 055007.
[2] Zhang K, Cui Z Y, Sun P, et al. Investigation of impurity transport using laser blow-off technique in the HL-2A Ohmic and ECRH plasmas [J]. Chinese Physics B, 2016, 25(6): 065202. doi:  10.1088/1674-1056/25/6/065202
[3] Demos S G, Negres R A, Raman R N, et al. Relaxation dynamics of nanosecond laser superheated material in dielectrics [J]. Optica, 2015, 2(8): 765-772. doi:  10.1364/OPTICA.2.000765
[4] Salleo A, Taylor S T, Martin M C, et al. Laser-driven formation of a high-pressure phase in amorphous silica [J]. Nature Materials, 2003, 2(12): 796-800. doi:  10.1038/nmat1013
[5] Papernov S, Schmid A W. Two mechanisms of crater formation in ultraviolet-pulsed-laser irradiated SiO2 thin films with artificial defects [J]. Journal of Applied Physics, 2005, 97(11): 114906. doi:  10.1063/1.1924878
[6] Rui S, Xiang M Z, Chen J, et al. Molecular dynamics simulation of shock induced ejection on fused silica surface [J]. Journal of Applied Physics, 2014, 115(19): 27708. doi:  10.1063/1.4876742
[7] Natoli J Y, Gallais L, Akhouayri H, et al. Laser-induced damage of materials in bulk, thin-film, and liquid forms [J]. Applied Optics, 2002, 41(16): 3156-3166. doi:  10.1364/AO.41.003156
[8] Manenkov A A. Fundamental mechanisms of laser-induced damage in optical materials: today’s state of understanding and problems [J]. Optical Engineering, 2014, 53(1): 010901. doi:  10.1117/1.OE.53.1.010901
[9] Ma B, Zhang Y Y, Ma H P, et al. Highly sensitive compact refractive index sensor based on phase-shifted sidewall Bragg gratings in slot waveguide [J]. Applied Optics, 2014, 53(1): 96-103.
[10] Lu M L, Ma B, Zhan G D, et al. Effect of etching on the laser-induced damage properties of artificial defects under 1064 nm laser irradiation [J]. Optical Engineering, 2014, 53(12): 122505. doi:  10.1117/1.OE.53.12.122505
[11] Cheng X B, Zhang J L, Ding T, et al. The effect of an electric field on the thermomechanical damage of nodular defects in dielectric multilayer coatings irradiated by nanosecond laser pulses [J]. Light: Science & Applications, 2013, 2(6): e80.
[12] Gallais L, Natoli J Y, Amra C. Statistical study of single and multiple pulse laser-induced damage in glasses [J]. Optics Express, 2002, 10(25): 1465-1474. doi:  10.1364/OE.10.001465
[13] Bude J, Miller P, Baxamusa S, et al. High fluence laser damage precursors and their mitigation in fused silica [J]. Optics Express, 2014, 22(5): 5839-5851. doi:  10.1364/OE.22.005839
[14] Raman R N, Negres R A, Demos S G. Kinetics of ejected particles during breakdown in fused silica by nanosecond laser pulses [J]. Applied Physics Letter, 2011, 98(5): 051901. doi:  10.1063/1.3549193
[15] Demos S G, Negres R A, Raman R N, et al. Material response during nanosecond laser induced breakdown inside of the exit surface of fused silica [J]. Laser & Photonics Reviews, 2013, 7(3): 444-452.
[16] Zhang N, Zhu X, Yang J, et al. Time-resolved shadowgraphs of material ejection in intense femtosecond laser ablation of aluminum [J]. Physical Review Letters, 2007, 99(16): 167602. doi:  10.1103/PhysRevLett.99.167602
[17] Goldstein J I, Newbury D E, Michael J R, et al. Scanning Electron Microscopy and X-Ray Microanalysis [M]. US: Springer, 2018.
[18] Park J H, Seo J, Park S, et al. Efficient CH3NH3PbI3 perovskite solar cells employing nanostructured p-type NiO electrode formed by a pulsed laser deposition [J]. Advanced Materials, 2015, 27(27): 4013-4019. doi:  10.1002/adma.201500523