Institute of Theoretical and Computational Chemistry, Key Laboratory of Mesoscopic Chemistry, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, China.
J Chem Phys. 2011 May 14;134(18):184303. doi: 10.1063/1.3589407.
Quantum state-to-state dynamics for the H + HBr(υ(i) = 0, j(i) =0) reaction was studied on an accurate ab intio potential energy surface for the electronic ground state of BrH(2). Both the H + HBr → H(2) + Br abstraction reaction and the H' + HBr → H'Br + H exchange reaction were investigated up to a collision energy of 2.0 eV. It was found that the abstraction channel is dominant at lower collision energies, while the exchange channel becomes dominant at higher collision energies. The total integral cross section of the abstraction reaction at a collision energy of 1.6 eV was found to be 1.37 Å(2), which is larger than a recent quantum mechanical result (1.06 Å(2)) and still significantly smaller than the experimental value (3 ± 1 Å(2)). Meanwhile, similar to the previous theoretical study, our calculations also predicted much hotter product rotational state distributions than those from the experimental study. This suggests that further experimental investigations are highly desirable to elucidate the dynamic properties of the title reactions.
在 BrH(2) 电子基态的精确从头算势能表面上,研究了 H + HBr(υ(i) = 0, j(i) =0)反应的量子态态动力学。研究了碰撞能高达 2.0 eV 的 H + HBr → H(2) + Br 抽取反应和 H' + HBr → H'Br + H 交换反应。结果发现,在较低的碰撞能下,抽取通道占主导地位,而在较高的碰撞能下,交换通道占主导地位。在碰撞能为 1.6 eV 时,抽取反应的总积分截面为 1.37 Å(2),大于最近的量子力学结果(1.06 Å(2)),但仍明显小于实验值(3 ± 1 Å(2))。同时,与之前的理论研究类似,我们的计算还预测了比实验研究更热的产物转动态分布。这表明,进一步的实验研究对于阐明标题反应的动力学性质是非常必要的。