首页> 外文期刊>Journal of Computational Chemistry: Organic, Inorganic, Physical, Biological >Drug Design and Discovery Center, State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 201203, People's Republic of China;Computational Center
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Drug Design and Discovery Center, State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 201203, People's Republic of China;Computational Center

机译:中国科学院上海生物研究所上海药物研究所药物设计与发现中心,药物研究国家重点实验室,上海201203;计算中心

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摘要

Variational transition state theory with multidimensional tunneling (VTST/MT) has been used for calculating the rate constants of reactions. The updated Hessians have been used to reduce the computational costs for both geometry optimization and trajectory following procedures. In this paper, updated Hessians are used to reduce the computational costs while calculating the rate constants applying VTST/MT. Although we found that directly applying the updated Hessians will not generate good vibrational frequencies along the minimum energy path (MEP), however, we can either re-compute the full Hessian matrices at fixed intervals or calculate the Block Hessians, which is constructed by numerical one-side difference for the Hessian elements in the "critical" region and Bofill updating scheme for the rest of the Hessian elements. Due to the numerical instability of the Bofill update method near the saddle point region, we have suggested a simple strategy in which we follow the MEP until certain percentage of the classical barrier height from the barrier top with full Hessians computed and then performing rate constant calculation with the extended MEP using Block Hessians. This strategy results a mean unsigned percentage deviation (MUPD) around 10% with full Hessians computed till the point with 80% classical barrier height for four studied reactions. This proposed strategy is attractive not only it can be implemented as an automatic procedure but also speeds up the VTST/MT calculation via embarrassingly parallelization to a personal computer cluster.
机译:多维隧穿(VTST / MT)的变分过渡态理论已用于计算反应速率常数。更新的Hessians已被用来减少几何优化和轨迹跟踪程序的计算成本。在本文中,更新的Hessian用于减少使用VTST / MT的速率常数时的计算成本。尽管我们发现直接应用更新的Hessian不会沿最小能量路径(MEP)产生良好的振动频率,但是,我们可以按固定的间隔重新计算完整的Hessian矩阵,或计算通过数值构造的Block Hessians “关键”区域中的Hessian元素具有一侧差异,其余的Hessian元素则具有Bofill更新方案。由于鞍点附近的Bofill更新方法的数值不稳定性,我们提出了一种简单的策略,在该策略中,我们遵循MEP直到从障碍顶部算起一定比例的经典障碍高度并计算出完整的Hessian,然后执行速率常数计算使用Block Hessians扩展MEP。这种策略导致平均无符号百分比偏差(MUPD)约为10%,对于四个已研究的反应,完整的Hessians计算到经典障碍高度为80%的一点。提出的策略很有吸引力,不仅可以实现为自动过程,而且还可以通过尴尬地并行化到个人计算机集群来加快VTST / MT计算。

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