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The mechanism study of low-pressure air plasma cleaning on large-aperture optical surface unraveled by experiment and reactive molecular dynamics simulation
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作者 Yuhai LI Qingshun BAI +9 位作者 Yuheng GUAN Hao LIU Peng ZHANG Buerlike BATELIBIEKE Rongqi SHEN Lihua LU Xiaodong YUAN Xinxiang MIAO Wei HAN Caizhen YAO 《Plasma Science and Technology》 SCIE EI CAS CSCD 2022年第6期77-87,共11页
Low-pressure air plasma cleaning is an effective method for removing organic contaminants on large-aperture optical components in situ in the inertial confinement fusion facility.Chemical reactions play a significant ... Low-pressure air plasma cleaning is an effective method for removing organic contaminants on large-aperture optical components in situ in the inertial confinement fusion facility.Chemical reactions play a significant role in plasma cleaning,which is a complex process involving abundant bond cleavage and species generation.In this work,experiments and reactive molecular dynamics simulations were carried out to unravel the reaction mechanism between the benchmark organic contaminants of dibutyl phthalate and air plasma.The optical emission spectroscopy was used to study the overall evolution behaviors of excited molecular species and radical signals from air plasma as a reference to simulations.Detailed reaction pathways were revealed and characterized,and specific intermediate radicals and products were analyzed during experiments and simulation.The reactive species in the air plasma,such as O,HO_(2)and O_(3)radicals,played a crucial role in cleaving organic molecular structures.Together,our findings provide an atomic-level understanding of complex reaction processes of low-pressure air plasma cleaning mechanisms and are essential for its application in industrial plasma cleaning. 展开更多
关键词 organic contaminants large-aperture optical components low-pressure air plasma plasma cleaning reactive species reactive molecular dynamics
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重力作用下大口径薄型光学元件面形的优化方法
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作者 张洋 熊召 +4 位作者 徐旭 叶朗 袁晓东 周海 张彬 《四川大学学报(自然科学版)》 CAS CSCD 北大核心 2014年第3期551-557,共7页
高功率固体激光装置的频率转换系统中,大口径薄型KDP晶体附加面形的产生,直接影响了高功率激光的频率转换效率和光束质量.针对非垂直放置状态下的大口径平面光学元件,提出了一种用于改变并优化光学元件因重力作用产生附加面形的"... 高功率固体激光装置的频率转换系统中,大口径薄型KDP晶体附加面形的产生,直接影响了高功率激光的频率转换效率和光束质量.针对非垂直放置状态下的大口径平面光学元件,提出了一种用于改变并优化光学元件因重力作用产生附加面形的"杠杆式"夹持方法,并据此设计了适用于大口径超薄Ⅰ/Ⅱ类KDP晶体的夹持系统.利用ANSYS分析软件,建立了相应的有限元分析模型,仿真计算了晶体在夹持前后的附加面形变化,讨论了支撑条长度及加工误差对晶体面形优化效果的影响.研究结果表明:提出的"杠杆式"夹持方法在加工无误差时,对晶体附加面形的优化率达到了90%以上;在支撑条存在加工误差时,对晶体附加面形的优化率也达到了74%以上. 展开更多
关键词 精密装校 面形优化 “杠杆式”夹持方法 大口径薄型 KDP晶体 附加面形
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