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Bimolecular recombination reactions: K-adiabatic and K-active forms of the bimolecular master equations and analytic solutions

机译:双分子重组反应:双分子主方程的K-绝热和K-活性形式及解析解

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摘要

Expressions for a K-adiabatic master equation for a bimolecular recombination rate constant k_(rec) are derived for a bimolecular reaction forming a complex with a single well or complexes with multiple well, where K is the component of the total angular momentum along the axis of least moment of inertia of the recombination product. The K-active master equation is also considered. The exact analytic solutions, i.e., the K-adiabatic and K-active steady-state population distribution function of reactive complexes, g(EJK) and g(EJ), respectively, are derived for the K-adiabatic and K-active master equation cases using properties of inhomogeneous integral equations (Fredholm type). The solutions accommodate arbitrary intermolecular energy transfer models, e.g., the single exponential, double exponential, Gaussian, step-ladder, and near-singularity models. At the high pressure limit, the k_(rec) for both the K-adiabatic and K-active master equations reduce, respectively, to the K-adiabatic and K-active bimolecular Rice–Ramsperger–Kassel–Marcus theory (high pressure limit expressions). Ozone and its formation from O + O_2 are known to exhibit an adiabatic K. The ratio of the K-adiabatic to the K-active recombination rate constants for ozone formation at the high pressure limit is calculated to be ∼0.9 at 300 K. Results on the temperature and pressure dependence of the recombination rate constants and populations of O_3 will be presented elsewhere.
机译:对于形成单孔复合物或多孔复合物的双分子反应,导出了双分子重组速率常数k_(rec)的K绝热主方程式,其中K是沿轴的总角动量的分量重组产物的最小惯性矩。还考虑了K主动主方程。分别针对K-绝热和K-主动主方程推导了精确的解析解,即反应复合物的K-绝热和K-活性稳态人口分布函数g(EJK)和g(EJ)。使用非齐次积分方程(弗雷德霍尔姆类型)的性质的例子。该解决方案适用于任意分子间能量转移模型,例如单指数,双指数,高斯,阶梯和近奇点模型。在高压极限下,K绝热方程和K主动主方程的k_(rec)分别减小到K绝热方程和K主动双分子Rice-Ramsperger-Kassel-Marcus理论(高压极限表达式)。已知臭氧及其由O + O_2形成的物质显示出绝热K。在300 K时,高压下形成臭氧的K绝热与K活性复合速率常数之比约为0.9。关于温度和压力的依赖关系,重组速率常数和O_3的总体将在其他地方给出。

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    Ghaderi Nima;

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  • 年度 2016
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