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Vibrational energy relaxation of small molecules and ions in liquids

机译:液体中小分子和离子的振动能弛豫

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摘要

A theoretical/computational framework for determining vibrational energy relaxation rates, pathways, and mechanisms, for small molecules and ions in liquids, is presented. The framework is based on the system—bath coupling approach, Fermi’s golden rule, classical time-correlation functions, and quantum correction factors. We provide results for three specific problems: relaxation of the oxygen stretch in neat liquid oxygen at 77 K, relaxation of the water bend in chloroform at room temperature, and relaxation of the azide ion anti-symmetric stretch in water at room temperature. In each case, our calculated lifetimes are in reasonable agreement with experiment. In the latter two cases, theory for the observed solvent isotope effects illuminates the relaxation pathways and mechanisms. Our results suggest several propensity rules for both pathways and mechanisms.
机译:提出了确定液体中小分子和离子的振动能量弛豫速率,途径和机理的理论/计算框架。该框架基于系统-浴耦合方法,费米的黄金法则,经典的时间相关函数和量子校正因子。我们提供了三个具体问题的结果:在77 K的纯净液态氧中氧的舒张松弛,在室温下在氯仿中水的弯曲舒张以及在室温下水中的叠氮化物离子非对称舒张的松弛。在每种情况下,我们计算出的寿命都与实验合理吻合。在后两种情况下,所观察到的溶剂同位素效应的理论阐明了弛豫途径和机理。我们的研究结果提示了两种途径和机制的倾向性规则。

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