Laser & Optoelectronics Progress, Volume. 59, Issue 23, 2320001(2022)

Fitting Model of Laser-Induced Damage Threshold for Optical Elements with Periodic Surface

Yuan Li, Junhong Su*, Junqi Xu, Lihong Yang, and Guoliang Yang
Author Affiliations
  • Shaanxi Province Key Laboratory of Thin Film Technology and Optical Test, College of Opto-Electronic Engineering, Xi'an Technological University, Xi'an 710021, Shaanxi , China
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    The laser-induced damage threshold of optical elements is a key indicator for measuring laser damage resistance. Optical elements with periodic surfaces have advantageous optical characteristics and potential applications in high-power laser systems. It is important to determine the laser-induced damage threshold accurately. In this paper, the main sources of uncertainty are analyzed, a calculation formula for the uncertainty of laser-induced damage threshold is established, and the processing methods for reducing the uncertainty of laser-induced damage threshold are provided. The results show that when the spot radius is 400 μm, the error is 10 μm, the laser energy error is 5%, and the uncertainty introduced by energy density is zero. Then, the main factors contributing to the uncertainty of the laser damage threshold are the uncertainty of the damage probability and that of the linear fitting. The precision of the laser-induced damage threshold can be further improved by increasing the number of measurements for each energy level.

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    Yuan Li, Junhong Su, Junqi Xu, Lihong Yang, Guoliang Yang. Fitting Model of Laser-Induced Damage Threshold for Optical Elements with Periodic Surface[J]. Laser & Optoelectronics Progress, 2022, 59(23): 2320001

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    Paper Information

    Category: Optics in Computing

    Received: Sep. 29, 2021

    Accepted: Nov. 10, 2021

    Published Online: Oct. 31, 2022

    The Author Email: Su Junhong (sujhong@126.com)

    DOI:10.3788/LOP202259.2320001

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