IF 3.4 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Reaction Chemistry & Engineering Pub Date : 2024-11-29 DOI:10.1039/D4RE00382A
Yuhai Li, Tianran Zheng, Qiang Yuan, Laixi Sun, Hao Liu, Xiaodong Yuan and Xin Zhang
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摘要

清除脉冲压缩光栅表面的碳污染物是保持啁啾脉冲放大系统功能和效率的关键环节。本研究提出了一种利用低压等离子体原位清洁脉冲压缩光栅的方法,并深入研究了消除碳污染物的微观化学反应机制。首先分析了光栅的表面污染状态和形成机理,讨论了污染物对光栅形貌和衍射效率的影响。污染后光栅的衍射效率会降低三分之一。经过 5.5 小时的低压空气等离子清洗后,光栅表面的碳污染物被完全清除,光栅的衍射效率和表面形态都得到了恢复。为了模拟利用低压等离子体清除碳污染物的复杂反应机制,我们进行了反应分子动力学模拟。研究了低压等离子体条件下的清洁效率,特别是脉冲压缩光栅的清洁效率,以阐明清除碳污染物的基本机制。研究揭示了碳污染物与等离子清洗相互作用所引发的化学反应的详细路径。值得注意的是,研究确定了这一过程的关键阶段,包括碳链的分解、新化学键的形成以及光栅表面分子结构的演变。这项研究为优化脉冲压缩光栅的等离子清洗过程提供了宝贵的信息,为改进光学应用中的维护策略铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Microscopic chemical reaction mechanism of carbon contaminants on the surface of pulse-compressed gratings cleaned by low-pressure plasma

Removing carbon contaminants from the surfaces of pulse-compressed gratings is a critical aspect of maintaining the functionality and efficiency of a chirped pulse amplification system. In this study, a method of in situ cleaning pulse-compressed gratings by low-pressure plasma is proposed and delves into the microscopic chemical reaction mechanism involved in eliminating carbon contaminants. Firstly, the surface contamination state and formation mechanism of the grating were analyzed, and the influence of the contaminants on the morphology and diffraction efficiency was discussed. The diffraction efficiency of the grating post-contamination can decrease by one-third. After a 5.5 hour low-pressure air plasma cleaning, carbon contaminants on the grating surface were completely removed, restoring both the diffraction efficiency and the surface morphology of the grating. Reactive molecular dynamics simulations were executed to model the intricate reaction mechanisms of eliminating carbon contaminants using low-pressure plasma. The cleaning efficiency, particularly on pulse-compressed gratings, was studied under low-pressure plasma conditions to elucidate the underlying mechanisms responsible for carbon contaminant removal. The research revealed a detailed pathway of chemical reactions initiated by the interaction of carbon contaminants with the plasma cleaning. Notably, the study identified key stages in the process, including the breakdown of carbon chains, the formation of new chemical bonds, and the evolution of molecular structures on the grating surface. Insights gained from this study provide valuable information for optimizing plasma cleaning processes tailored to pulse-compressed gratings, paving the way for improved maintenance strategies in optical applications.

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来源期刊
Reaction Chemistry & Engineering
Reaction Chemistry & Engineering Chemistry-Chemistry (miscellaneous)
CiteScore
6.60
自引率
7.70%
发文量
227
期刊介绍: Reaction Chemistry & Engineering is a new journal reporting cutting edge research into all aspects of making molecules for the benefit of fundamental research, applied processes and wider society. From fundamental, molecular-level chemistry to large scale chemical production, Reaction Chemistry & Engineering brings together communities of chemists and chemical engineers working to ensure the crucial role of reaction chemistry in today’s world.
期刊最新文献
Back cover Correction: Intensification of silver nanoparticle synthesis through continuous flow split and recombine microreactors Correction: Rare-earth doped hexagonal NaYbF4 nanoprobes with size-controlled and NIR-II emission for multifunctional applications Back cover Self-optimising continuous-flow hydrothermal reactor for nanoparticle synthesis†
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