• Infrared and Laser Engineering
  • Vol. 46, Issue 5, 521001 (2017)
Ma Hongping1、2、*, Cheng Xinbin1、2, Zhang Jinlong1、2, Wang Zhanshan1、2, and Tang Yongjian3
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
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    DOI: 10.3788/irla201746.0521001 Cite this Article
    Ma Hongping, Cheng Xinbin, Zhang Jinlong, Wang Zhanshan, Tang Yongjian. Damage growth characteristics of artificial nodules prepared by different processes[J]. Infrared and Laser Engineering, 2017, 46(5): 521001 Copy Citation Text show less
    References

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    [2] Abudusalamu Tuniyazi, Cheng Xinbin, Bao Ganghua, et al. Laser induced damage characteristics of nodules in thin-film polarizers[EB/OL].[2014-02-21] http://www.paper.edu.cn/releasepaper/content/201402-377.

    [3] 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)

    [4] 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)

    [5] 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)

    [6] 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)

    [7] 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.

    [8] 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.

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

    [10] Wang J. Laser-induced damage threshold prediction of dielectric enhanced mirrors at 1 064 nm[C]//SPIE, 2015, 94530: 94530S.

    [11] 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.

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    [13] 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.

    [14] 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.

    [15] 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.

    CLP Journals

    [1] Yu Xia, Xu Jiao, Zhang Bin. Thermal melting damage of thin film components induced by surface impurities and nodule defects[J]. Infrared and Laser Engineering, 2018, 47(12): 1243003

    Ma Hongping, Cheng Xinbin, Zhang Jinlong, Wang Zhanshan, Tang Yongjian. Damage growth characteristics of artificial nodules prepared by different processes[J]. Infrared and Laser Engineering, 2017, 46(5): 521001
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