[1] Bu Yikun, Zhao Li, Zheng Quan, et al. Design method of high damage threshold laser mirror[J]. Infrared and Laser Engineering, 2006, 35(2):183-186. (in Chinese)卜轶坤, 赵丽, 郑权, 等. 高损伤阈值激光反射镜的设计方法[J]. 红外与激光工程, 2006, 35(2):183-186.
[2] Huang Wei, Zhang Yundong. Study of damage mechanism and thermal distortion of optical coating components under CW high power laser radiation[J]. Optics and Precision Engineering, 1996, 4(5):61-66. (in Chinese)黄伟, 张云洞. 连续波强激光辐照下光学薄膜元件损伤机理和热畸变研究[J]. 光学精密工程, 1996, 4(5):61-66.
[3] Han Jinghua, He Changtao, Zhang Qiuhui, et al. Morghological analysis of laser induced glass bulk damage by marker controlling watershed algorithm[J]. Optics and Precision Engineering, 2010, 18(6):1387-1395.(in Chinese)韩敬华, 何长涛, 张秋慧, 等. 应用标记控制分水岭分割算法研究激光诱导玻璃体损伤形貌[J]. 光学精密工程, 2010, 18(6):1387-1395.
[4] Wu Xiaoye, Zhang Lichao, Shi Guang, et al. Optical thermal and optical-acoustics detecting techniques applied for the characterization of high performance optical thin films[J]. Chinese Optics, 2014, 7(5):701-711. (in Chinese)武潇野, 张立超, 时光, 等. 应用于高性能光学薄膜表征的光热光声检测技术[J]. 中国光学, 2014, 7(5):701-711.
[5] Tang Wei, Ji Tongbo, Guo Jin, et al. Numerical analysis of HgCdTe crystal damaged by high repetition frequency CO2 laser[J]. Chinese Optics, 2013, 6(5):736-742. (in Chinese)汤伟, 吉桐伯, 郭劲, 等. 高重频CO2 激光损伤HgCdTe晶体的数值分析[J]. 中国光学, 2013, 6(5):736-742.
[6]

Cheng X, Zhang J, 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, 2013, 2(6):e80.
[7]

Stolz C J, Tench R J, Kozlowski M R, et al. Comparison of nodular defect seed geometries from different deposition techniques[C]//Laser-Induced Damage in Optical Materials, 1996:374-382.
[8]

Cheng X, Wang Z. Defect-related properties of optical coatings[J]. Advanced Optical Technologies, 2014, 3(1):65-90.
[9]

Wang J. Laser-induced damage threshold prediction of dielectric enhanced mirrors at 1064 nm[C]//SPIE, 2015, 94530:94530S.
[10]

Stolz C J, Wolfe J E, Adams J J, et al. High laser-resistant multilayer mirrors by nodular defect planarization[Invited] [J]. Applied Optics, 2014, 53(4):A291-296.
[11]

Tench R J, Chow R, Kozlowski M R. Characterization of defect geometries in multilayer optical coatings[J]. Journal of Vacuum Science Technology A, 1994, 12(5):2808-2813.
[12]

Stolz C J, Genin F Y, Pistor T V. Electric-field enhancement by nodular defects in multilayer coatings irradiated at normal and 45 incidence[C]//XXXV Annual Symposium on Optical Materials for High Power Lasers:Boulder Damage Symposium, 2004:41-49.
[13]

Cheng X, Tuniyazi A, Wei Z, et al. Physical insight toward electric field enhancement at nodular defects in optical coatings[J]. Optics Express, 2015, 23(7):8609-8619.
[14]

Cheng X, Ding T, He W, et al. Using engineered nodules to study laser-induced damage in optical thin films with nanosecond pulses[C]//SPIE, 2011, 8190:819002.