• Chinese Optics Letters
  • Vol. 19, Issue 8, 081403 (2021)
Bin Ma1、*, Jiaqi Han1, Jing Li2, Ke Wang1, Shuang Guan1, Xinshang Niu1, Haoran Li1, Jinlong Zhang1, Hongfei Jiao1, Xinbin Cheng1, and Zhanshan Wang1
Author Affiliations
  • 1Institute of Precision Optical Engineering, Tongji University, Shanghai 200092, China
  • 2Beijing Research Institute of Telemetry, Beijing 100094, China
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    DOI: 10.3788/COL202119.081403 Cite this Article Set citation alerts
    Bin Ma, Jiaqi Han, Jing Li, Ke Wang, Shuang Guan, Xinshang Niu, Haoran Li, Jinlong Zhang, Hongfei Jiao, Xinbin Cheng, Zhanshan Wang. Damage characteristics of dual-band high reflectors affected by nodule defects in the femtosecond regime[J]. Chinese Optics Letters, 2021, 19(8): 081403 Copy Citation Text show less
    References

    [1] K. H. Guenther. Nodular defects in dielectric multilayers and thick single layers. Appl. Opt., 20, 1034(1981).

    [2] X. B. Cheng, Z. X. Shen, H. F. Jiao, J. L. Zhang, B. Ma, T. Ding, J. T. Lu, X. D. Wang, Z. S. Wang. Laser damage study of nodules in electron-beam-evaporated HfO2/SiO2 high reflectors. Appl. Opt., 50, C357(2011).

    [3] X. B. Cheng, J. L. Zhang, T. Ding, Z. Y. Wei, H. Q. Li, Z. S. Wang. The effect of an electric field on the thermomechanical damage of nodular defects in dielectric multilayer coatings irradiated by nanosecond laser pulses. Light Sci. Appl., 2, e80(2013).

    [4] V. E. Gruzdev, A. S. Gruzdeva. Resonance increase of high-power laser field with nodule defects in multilayer optical coatings: theory and simulation. Proc. SPIE, 3263, 169(1998).

    [5] X. B. Cheng, A. Tuniyazi, Z. Y. Wei, J. L. Zhang, T. Ding, H. F. Jiao, B. Ma, H. Q. Li, T. B. Li, Z. S. Wang. Physical insight toward electric field enhancement at nodular defects in optical coatings. Opt. Express, 23, 8609(2015).

    [6] X. B. Cheng, T. He, J. L. Zhang, H. F. Jiao, B. Ma, Z. S. Wang. Contribution of angle-dependent light penetration to electric-field enhancement at nodules in optical coatings. Opt. Lett., 42, 2086(2017).

    [7] Y. G. Shan, H. B. He, C. Y. Wei, S. H. Li, M. Zhou, D. W. Li, Y. A. Zhao. Geometrical characteristics and damage morphology of nodules grown from artificial seeds in multilayer coating. Appl. Opt., 49, 4290(2010).

    [8] C. Y. Wei, K. Yi, Z. X. Fan, J. D. Shao. Influence of composition and seed dimension on the structure and laser damage of nodular defects in HfO2/SiO2 high reflectors. Appl. Opt., 51, 6781(2012).

    [9] H. P. Ma, X. B. Cheng, J. L. Zhang, H. F. Jiao, B. Ma, Y. J. Tang, Z. L. Wu, Z. S. Wang. Effect of boundary continuity on nanosecond laser damage of nodular defects in high-reflection coatings. Opt. Lett., 42, 478(2017).

    [10] L. Y. Xie, T. He, J. L. Zhang, H. F. Jiao, B. Ma, Z. S. Wang, X. B. Cheng. Improve the LIDT of high-reflection coatings by planarizing nodular defects. High Power Laser Particle Beams, 30, 092001(2018).

    [11] B. Mangote, L. Gallais, M. Zerrad, F. Lemarchand, L. H. Gao, M. Commandré, M. Lequime. A high accuracy femto-/picosecond laser damage test facility dedicated to the study of optical thin films. Rev. Sci. Instrum., 83, 013109(2012).

    [12] N. S. Shcheblanov, T. E. Itina. Femtosecond laser interactions with dielectric materials: insights of a detailed modeling of electronic excitation and relaxation processes. Appl. Phys. A, 110, 579(2013).

    [13] G. Y. Wang, L. Jiang, J. Y. Sun, J. Hu, Q. S. Wang, M. Li, Y. F. Lu. Ultrafast dynamics of three types of simultaneous shockwaves and filament attenuation in femtosecond laser multi-pulse ablation of PMMA. Chin. Opt. Lett., 17, 081405(2019).

    [14] Y. X. Liu, T. J. Wang, N. Chen, H. Guo, H. Y. Sun, L. Zhang, Z. Qi, Y. X. Leng, Z. S. Wang, R. X. Li. Simultaneous generation of controllable double white light lasers by focusing an intense femtosecond laser pulse in air. Chin. Opt. Lett., 18, 121402(2020).

    [15] H. Zhang, F. T. Zhang, X. Du, G. P. Dong, J. R. Qiu. Influence of laser-induced air breakdown on femtosecond laser ablation of aluminum. Opt. Express, 23, 1370(2015).

    [16] N. Siaulys, L. Gallais, A. Melninkaitis. Direct holographic imaging of ultrafast laser damage process in thin films. Opt. Lett., 39, 2164(2014).

    [17] L. Gallais, D. B. Douti, M. Commandre, G. Bataviciute, E. Pupka, M. Sciuka, L. Smalakys, V. Sirutkaitis, A. Melninkaitis. Wavelength dependence of femtosecond laser-induced damage threshold of optical materials. J. Appl. Phys., 117, 223103(2015).

    [18] L. Gallais, B. Mangote, M. Zerrad, M. Commandré, V. Sirutkaitis. Laser-induced damage of hafnia coatings as a function of pulse duration in the femtosecond to nanosecond range. Appl. Opt., 50, C178(2011).

    [19] S. Melnikas, T. Tolenis, L. Smalakys, G. Batavičiūtė, S. Kičas. Enhancement of laser-induced damage threshold in chirped mirrors by electric field reallocation. Opt. Express, 25, 26537(2017).

    [20] S. L. Chen, P. P. Gao, Y. A. Zhao, Y. Z. Wang, Z. Fang, Y. X. Leng, J. D. Shao. Thermal-dynamical analysis of blister formation in chirped mirror irradiated by single femtosecond lasers. Appl. Opt., 53, 3347(2014).

    [21] L. Gallais, X. B. Cheng, Z. S. Wang. Influence of nodular defects on the laser damage resistance of optical coatings in the femtosecond regime. Opt. Lett., 39, 1545(2014).

    [22] X. Zou, F. Y. Kong, Y. X. Jin, P. Chen, J. M. Chen, J. Xu, Y. L. Wang, Y. B. Zhang, J. D. Shao. Influence of nodular defect size on metal dielectric mixed gratings for ultra-short ultra-high intensity laser system. Opt. Mater., 91, 177(2019).

    Data from CrossRef

    [1] Jiamin Wang, Kuo Zhang, Yanhui Ji, Jinghua Yu, Jirigalantu, Wei Zhang, Wenhao Li, Changbin Zheng, Fei Chen. Damage Characteristics of Aluminum-Coated Grating Irradiated by Nanosecond Pulsed Laser. Coatings, 12, 701(2022).

    Bin Ma, Jiaqi Han, Jing Li, Ke Wang, Shuang Guan, Xinshang Niu, Haoran Li, Jinlong Zhang, Hongfei Jiao, Xinbin Cheng, Zhanshan Wang. Damage characteristics of dual-band high reflectors affected by nodule defects in the femtosecond regime[J]. Chinese Optics Letters, 2021, 19(8): 081403
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