Yamamoto Takeshi, Miller William H
Department of Chemistry, Kenneth S. Pitzer Center for Theoretical Chemistry, University of California, Berkeley, California 94720, USA.
J Chem Phys. 2004 Feb 15;120(7):3086-99. doi: 10.1063/1.1641005.
We present an efficient path integral approach for evaluating thermal rate constants within the quantum instanton (QI) approximation that was recently introduced to overcome the quantitative deficiencies of the earlier semiclassical instanton approach [Miller, Zhao, Ceotto, and Yang, J. Chem. Phys. 119, 1329 (2003)]. Since the QI rate constant is determined solely by properties of the (quantum) Boltzmann operator (specifically, by the zero time properties of the flux-flux and delta-delta correlation functions), it can be evaluated by well-established techniques of imaginary time path integrals even for quite complex chemical reactions. Here we present a series of statistical estimators for relevant quantities which can be evaluated straightforwardly with any nonlinear reaction coordinates and general Hamiltonians in Cartesian space. To facilitate the search for the optimal dividing surfaces required by the QI approximation, we introduce a two-dimensional quantum free energy surface associated with the delta-delta correlation function and describe how an adaptive umbrella sampling can be used effectively to construct such a free energy surface. The overall computational procedure is illustrated by the application to a hydrogen exchange reaction in gas phase, which shows excellent agreement of the QI rates with those obtained from quantum scattering calculations.
我们提出了一种有效的路径积分方法,用于在量子瞬子(QI)近似下评估热速率常数。该近似是最近引入的,旨在克服早期半经典瞬子方法的定量缺陷[米勒、赵、切奥托和杨,《化学物理杂志》119, 1329 (2003)]。由于QI速率常数仅由(量子)玻尔兹曼算符的性质决定(具体而言,由通量 - 通量和δ - δ相关函数的零时间性质决定),即使对于相当复杂的化学反应,也可以通过成熟的虚时路径积分技术来评估。在这里,我们给出了一系列相关量的统计估计器,这些估计器可以直接用笛卡尔空间中的任何非线性反应坐标和一般哈密顿量进行评估。为了便于寻找QI近似所需的最优分割面,我们引入了与δ - δ相关函数相关的二维量子自由能面,并描述了如何有效地使用自适应伞形采样来构建这样的自由能面。通过应用于气相中的氢交换反应来说明整个计算过程,结果表明QI速率与从量子散射计算中获得的速率具有极好的一致性。