电子束辐照ch4掺杂Ar冰的基质辅助过程

Methane Pub Date : 2023-10-07 DOI:10.3390/methane2040025
Mykhailo Bludov, Ivan Khyzhniy, Sergey Uyutnov, Elena Savchenko
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摘要

研究了掺入CH4(0.1-10%)的Ar基体在电子束下辐照引起的弛豫过程,重点研究了辐照产物h原子、H2分子、CH自由基和能量传递过程的动力学。讨论了向掺杂剂和辐射分解产物传递能量的三种通道,包括自由载流子、自由激子和由自俘获激子发射的“本征源”光子。以相关的方式监测辐射分解产物与解吸颗粒的总收率。对自由激子诱导的甲烷转化反应的分析表明,CH自由基可以被认为是CH3种类的标志。激子自捕获和能量转移到掺杂剂和辐射溶解产物之间的竞争已经被证明。建立了掺杂Ar基体中H原子的非线性浓度行为。通过对光发射(H原子和CH3自由基)、粒子抛射和温度的实时相关监测发现,暴露约1小时后,光产率呈现出非单调行为,并出现强烈的发光闪光,与粒子抛射的爆炸脉冲和温度相关。这种现象与能量传递和复合反应过程的联系已经建立起来。结果表明,粒子的延迟爆炸抛射是由H原子和CH3自由基的复合驱动的。这发生在它们在CH4含量C≥1%的基质中积累到临界浓度之后。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Matrix-Assisted Processes in CH4-Doped Ar Ices Irradiated with an Electron Beam
The relaxation processes induced by exposure of the Ar matrices doped with CH4 (0.1–10%) to an electron beam were studied with a focus on the dynamics of radiolysis products—H atoms, H2 molecules, CH radicals, and energy transfer processes. Three channels of energy transfer to dopant and radiolysis products were discussed, including free charge carriers, free excitons and photons from the “intrinsic source” provided by the emission of the self-trapped excitons. Radiolysis products along with the total yield of desorbing particles were monitored in a correlated manner. Analysis of methane transformation reactions induced by free excitons showed that the CH radical can be considered a marker of the CH3 species. The competition between exciton self-trapping and energy transfer to the dopant and radiolysis products has been demonstrated. A nonlinear concentration behavior of the H atoms in doped Ar matrices has been established. Real-time correlated monitoring of optical emissions (H atom and CH3 radicals), particle ejection, and temperature revealed a nonmonotonic behavior of optical yields with a strong luminescence flash after almost an hour of exposure, which correlated with the explosive pulse of particle ejection and temperature. The connection of this phenomenon with the processes of energy transfer and recombination reactions has been established. It is shown that the delayed explosive ejection of particles is driven by both the recombination of H atoms and CH3 radicals. This occurs after their accumulation to a critical concentration in matrices at a CH4 content C ≥ 1%.
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