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黄金规则速率表达式的非马尔可夫修正。

Non-Markovian modification of the golden rule rate expression.

作者信息

Basilevsky M V, Davidovich G V, Titov S V, Voronin A I

机构信息

Photochemistry Center, Russian Academy of Sciences, ul. Novatorov 7a, Moscow 119421, Russia.

出版信息

J Chem Phys. 2006 Nov 21;125(19):194513. doi: 10.1063/1.2364498.

Abstract

The reformulation of the standard golden rule approach considered in this paper for treating reactive tunneling reduces the computation of the reaction rate to a derivation of band shapes for energy levels of reactant and product states. This treatment is based on the assumption that the medium environment is actively involved as a partner in the energy exchange with the reactive subsystem but its reorganization effect is negligible. Starting from the quantum relaxation equation for the density matrix, the required band shapes are represented in terms of the spectral density function, exhibiting the continuum spectrum inherent to the interaction between the reactants and the medium in the total reactive system. The simplest Lorentzian spectral bands, obtained under Redfield approximation, proved to be unsatisfactory because they produced a divergent rate expression at low temperature. The problem is resolved by invoking a refined spectral band shape, which behaves as Lorentzian one at the band center but decays exponentially at its tails. The corresponding closed non-Markovian rate expression is derived and investigated taking as an example the photochemical H-transfer reaction between fluorene and acridine proceeding in the fluorene molecular crystal. The kinetics in this reactive system was thoroughly studied experimentally in a wide temperature range [B. Prass et al., Ber. Bunsenges. Phys. Chem. 102, 498 (1998)].

摘要

本文所考虑的用于处理反应隧穿的标准黄金规则方法的重新公式化,将反应速率的计算简化为反应物和产物状态能级的能带形状推导。这种处理基于这样一种假设,即介质环境作为与反应性子系统进行能量交换的伙伴积极参与其中,但其重组效应可忽略不计。从密度矩阵的量子弛豫方程出发,所需的能带形状用谱密度函数表示,展现了总反应系统中反应物与介质相互作用所固有的连续谱。在雷德菲尔德近似下得到的最简单的洛伦兹谱带被证明是不令人满意的,因为它们在低温下产生发散的速率表达式。通过引入一种精细的谱带形状解决了该问题,该谱带形状在带中心处表现为洛伦兹型,但在其尾部呈指数衰减。以芴分子晶体中芴与吖啶之间的光化学氢转移反应为例,推导并研究了相应的封闭非马尔可夫速率表达式。该反应系统中的动力学在很宽的温度范围内进行了深入的实验研究[B. Prass等人,《德国应用化学》102, 498 (1998)]。

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