Detection of Resonant Collisional Radiative Transfer of the Vibrational Energy between Molecules Subjected to Infrared Laser Multiphoton Excitation in a Two-Component Medium

IF 1.4 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
G. N. Makarov, A. N. Petin
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Abstract

Resonant collisional radiative transfer of the vibrational energy between molecules subjected to infrared laser multiphoton excitation in a two-component medium has been studied. Experiments have been carried out with BCl3 molecules of the natural isotopic composition in a mixture with CH3F molecules, which are optically active sensitizers and acceptors of radicals. Both types of molecules resonantly absorb laser radiation. Resonant collisional radiative energy transfer from CH3F molecules to 10BCl3 ones has been observed. It has been shown that this process significantly increases the dissociation yield of 10BCl3 and 11BCl3 molecules compared to the dissociation yield with neutral acceptors of radicals. Dependences of the dissociation yields of BCl3 molecules on the pump laser frequency have demonstrated a structure that closely correlates with the structure of the infrared absorption spectrum of CH3F molecules. The method has been described and the experimental results have been reported. Conditions for efficient resonant collisional radiative transfer of the vibrational energy between molecules subjected to infrared laser multiphoton excitation have been discussed.

Abstract Image

双组分介质中红外激光多光子激发下分子间振动能量共振碰撞辐射传递的探测
研究了双组分介质中受红外激光多光子激发的分子间振动能量的共振碰撞辐射传递。用天然同位素组成的BCl3分子与CH3F分子混合进行了实验,它们是光学活性敏化剂和自由基受体。这两种分子都能共振地吸收激光辐射。已经观察到从CH3F分子到10BCl3分子的共振碰撞辐射能量转移。研究表明,与中性自由基受体的解离率相比,该过程显著提高了10BCl3和11BCl3分子的解离率。BCl3分子的解离产率与泵浦激光频率的关系表明其结构与CH3F分子的红外吸收光谱结构密切相关。本文描述了该方法,并报道了实验结果。讨论了红外激光多光子激发下分子间振动能量有效共振碰撞辐射传递的条件。
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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来源期刊
JETP Letters
JETP Letters 物理-物理:综合
CiteScore
2.40
自引率
30.80%
发文量
164
审稿时长
3-6 weeks
期刊介绍: All topics of experimental and theoretical physics including gravitation, field theory, elementary particles and nuclei, plasma, nonlinear phenomena, condensed matter, superconductivity, superfluidity, lasers, and surfaces.
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