Institute for Computational Sciences and Engineering, Qingdao University, Qingdao, 266071, China.
J Comput Chem. 2010 May;31(7):1385-96. doi: 10.1002/jcc.21423.
The time-dependent quantum wave packet and the quasi-classical trajectory (QCT) calculations for the title reactions are carried out using three recent-developed accurate potential energy surfaces of the 1(1)A', 1(3)A', and 1(3)A'' states. The two commonly used polarization-dependent differential cross sections, dsigma(00)/domega(t), dsigma(20)/domega(t), with omega(t) being the polar coordinates of the product velocity omega', and the three angular distributions, P(theta(r)), P(Phi(r)), and P(theta(r),Phi(r)), with theta(r), Phi(r) being the polar angles of the product angular momentum, are generated in the center-of-mass frame using the QCT method to gain insight into the alignment and the orientation of the product molecules. Influences of the potential energy surface, the collision energy, and the isotope mass on the stereodynamics are shown and discussed. Validity of the QCT calculation has been examined and proved in the comparison with the quantum wave packet calculation.
采用最新发展的 1(1)A'、1(3)A'和 1(3)A''态的三个精确势能面,对标题反应进行了时变量子波包和准经典轨迹(QCT)计算。使用 QCT 方法在质心框架中生成了两个常用的极化相关微分截面 dsigma(00)/domega(t)、dsigma(20)/domega(t),其中 omega(t)是产物速度 omega'的极坐标,以及三个角分布 P(theta(r))、P(Phi(r))和 P(theta(r),Phi(r)),其中 theta(r)、Phi(r)是产物角动量的极角,以深入了解产物分子的取向和定向。展示并讨论了势能面、碰撞能和同位素质量对立体动力学的影响。通过与量子波包计算的比较,检验并证明了 QCT 计算的有效性。