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苯酚1πσ*光化学的含时量子波包描述

Time-dependent quantum wave-packet description of the 1pi sigma* photochemistry of phenol.

作者信息

Lan Zhenggang, Domcke Wolfgang, Vallet Valérie, Sobolewski Andrzej L, Mahapatra Susanta

机构信息

Department of Chemistry, Technical University of Munich, Garching D-85747, Germany.

出版信息

J Chem Phys. 2005 Jun 8;122(22):224315. doi: 10.1063/1.1906218.

Abstract

The photoinduced hydrogen elimination reaction in phenol via the conical intersections of the dissociative 1pi sigma* state with the 1pi pi* state and the electronic ground state has been investigated by time-dependent quantum wave-packet calculations. A model including three intersecting electronic potential-energy surfaces (S0, 1pi sigma*, and 1pi pi*) and two nuclear degrees of freedom (OH stretching and OH torsion) has been constructed on the basis of accurate ab initio multireference electronic-structure data. The electronic population transfer processes at the conical intersections, the branching ratio between the two dissociation channels, and their dependence on the initial vibrational levels have been investigated by photoexciting phenol from different vibrational levels of its ground electronic state. The nonadiabatic transitions between the excited states and the ground state occur on a time scale of a few tens of femtoseconds if the 1pi pi*-1pi sigma* conical intersection is directly accessible, which requires the excitation of at least one quantum of the OH stretching mode in the 1pi pi* state. It is shown that the node structure, which is imposed on the nuclear wave packet by the initial preparation as well as by the transition through the first conical intersection (1pi pi*-1pi sigma*), has a profound effect on the nonadiabatic dynamics at the second conical intersection (1pi sigma*-S0). These findings suggest that laser control of the photodissociation of phenol via IR mode-specific excitation of vibrational levels in the electronic ground state should be possible.

摘要

通过含时量子波包计算,研究了苯酚中经由离解的(1\pi\sigma^)态与(1\pi\pi^)态以及电子基态的锥形交叉点发生的光致氢消除反应。基于精确的从头算多参考电子结构数据,构建了一个包含三个相交电子势能面((S_0)、(1\pi\sigma^)和(1\pi\pi^))以及两个核自由度((OH)伸缩和(OH)扭转)的模型。通过从苯酚基电子态的不同振动态激发苯酚,研究了锥形交叉点处的电子布居转移过程、两个解离通道之间的分支比及其对初始振动态的依赖性。如果(1\pi\pi^-1\pi\sigma^)锥形交叉点可直接到达,激发态与基态之间的非绝热跃迁发生在几十飞秒的时间尺度上,这要求在(1\pi\pi^)态中至少激发一个(OH)伸缩模式的量子。结果表明,初始制备以及通过第一个锥形交叉点((1\pi\pi^-1\pi\sigma^))的跃迁施加在核波包上的节点结构,对第二个锥形交叉点((1\pi\sigma^-S_0))处的非绝热动力学有深远影响。这些发现表明,通过对电子基态中振动态进行红外模式特异性激发来激光控制苯酚的光解离应该是可行的。

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