利用中红外光频梳傅立叶变换光谱对非热分子等离子体进行精密光谱分析

Ibrahim Sadiek, Alexander Puth, Grzegorz Kowzan, Akiko Nishiyama, Sarah-Johanna Klose, Jürgen Röpcke, Norbert Lang, Piotr Masłowski and Jean-Pierre H van Helden
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引用次数: 0

摘要

非热分子等离子体在众多工业过程中发挥着至关重要的作用,并具有推动基本化学转化的巨大潜力。有关等离子体分子组成和量子态种群分布的准确信息对于理解和优化等离子体过程至关重要。在这里,我们应用基于中红外频率梳的傅立叶变换光谱仪测量了含有氢、氮和碳源的等离子体在 2800-3400 cm-1 范围内的高分辨率光谱。该技术的光谱宽带和高分辨率功能可同时对等离子体产生的多个物种(包括 CH4、C2H2、C2H6、NH3 和 HCN)进行量子态分辨光谱分析,提供的详细信息超出了现有方法的限制。利用逐行拟合方法,我们分析了等离子体生成的 HCN 的五个振动波段中的 548 个分辨跃迁。结果表明,量子态之间存在显著的非热分布,低旋转量子数和高旋转量子数的温度不同,温差约为 62 K。通过基于梳状方法的宽带态分辨光谱分析,我们对分子等离子体的非热性质有了前所未有的基本认识--对于如此复杂的非热环境,这种详细描述是前所未有的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Precision spectroscopy of non-thermal molecular plasmas using mid-infrared optical frequency comb Fourier transform spectroscopy
Non-thermal molecular plasmas play a crucial role in numerous industrial processes and hold significant potential for driving essential chemical transformations. Accurate information about the molecular composition of the plasmas and the distribution of populations among quantum states is essential for understanding and optimizing plasma processes. Here, we apply a mid-infrared frequency comb-based Fourier transform spectrometer to measure high-resolution spectra of plasmas containing hydrogen, nitrogen, and a carbon source in the 2800–3400 cm–1 range. The spectrally broadband and high-resolution capabilities of this technique enable quantum-state-resolved spectroscopy of multiple plasma-generated species simultaneously, including CH4, C2H2, C2H6, NH3, and HCN, providing detailed information beyond the limitations of current methods. Using a line-by-line fitting approach, we analyzed 548 resolved transitions across five vibrational bands of plasma-generated HCN. The results indicate a significant non-thermal distribution of the populations among the quantum states, with distinct temperatures observed for lower and higher rotational quantum numbers, with a temperature difference of about 62 K. Broadband state-resolved-spectroscopy via comb-based methods provides unprecedented fundamental insights into the non-thermal nature of molecular plasmas—a detailed picture that has never been accomplished before for such complex non-thermal environment.
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