Key Laboratory of Theoretical and Computational Photochemistry, Ministry of Education, College of Chemistry, Beijing Normal University, Beijing 100875, China.
J Chem Phys. 2011 Mar 21;134(11):114303. doi: 10.1063/1.3565445.
Quantum chemical calculations with relativistic effects were performed on the photodissociation of o-, m-, and p-bromofluorobenzene (o-, m-, and p-BrFPh) at 266 nm. The method of multistate second-order multiconfigurational perturbation theory in conjunction with spin-orbit interaction through complete active space state interaction was employed to calculate the potential energy curves for the ground and low-lying excited states of o-, m-, and p-BrFPh along their photodissociation reaction coordinates. The dissociation mechanisms with products of Br((2)P(3∕2)) and Br(∗)((2)P(1∕2)) states were clarified with the computed potential energy curves and the surface crossings. The current calculations augmented previous theoretical investigations by including relativistic effects and resolved some differences of experimental assignment regarding the dissociation channels of o-, m-, and p-BrFPh.
对 266nm 处邻-、间-和对-溴氟苯(o-、m-和 p-BrFPh)的光解进行了考虑相对论效应的量子化学计算。采用多态二级多组态微扰理论结合自旋轨道相互作用通过完全活性空间态相互作用的方法,计算了 o-、m-和 p-BrFPh 沿其光解反应坐标的基态和低能激发态的势能曲线。通过计算的势能曲线和表面交叉,阐明了具有 Br((2)P(3∕2))和 Br(∗)((2)P(1∕2))态产物的离解机制。当前的计算通过包含相对论效应,增强了先前的理论研究,并解决了关于 o-、m-和 p-BrFPh 离解通道的实验分配的一些差异。