Chu Weibin, Prezhdo Oleg V
Departments of Chemistry, and Physics and Astronomy, University of Southern California, Los Angeles, California 90089, United States.
J Phys Chem Lett. 2021 Apr 1;12(12):3082-3089. doi: 10.1021/acs.jpclett.0c03853. Epub 2021 Mar 22.
We develop an efficient and accurate method for numerical evaluation of nonadiabatic (NA) coupling in the Kohn-Sham representation with projector augmented-wave (PAW) pseudopotentials that are commonly used in electronic structure calculations on nanoscale, condensed matter, and molecular systems. Without additional cost, the method provides an order of magnitude improvement in accuracy compared to the current technique, while it is 3-4 orders of magnitude faster than the exact evaluation. Atomic displacements over typical time steps in molecular dynamics (MD) simulations are much smaller than the size of the PAW core region, and therefore, evaluation of the NA in the core is simplified. The accuracy is demonstrated with three condensed matter systems. The method is robust to variation in the MD time step. The accurate NA coupling evaluation also helps in maintaining phase-consistency of the NA coupling and identifying trivial crossings of adiabatic states. The approach stimulates NAMD applications to modeling of modern materials and processes.
我们开发了一种高效且准确的方法,用于在Kohn-Sham表象中对非绝热(NA)耦合进行数值评估,该方法采用了投影增强波(PAW)赝势,这种赝势常用于纳米尺度、凝聚态物质和分子系统的电子结构计算。该方法无需额外成本,与当前技术相比,精度提高了一个数量级,同时比精确评估快3 - 4个数量级。分子动力学(MD)模拟中典型时间步长上的原子位移远小于PAW核心区域的大小,因此,核心区域中NA的评估得以简化。通过三个凝聚态物质系统证明了该方法的准确性。该方法对于MD时间步长的变化具有鲁棒性。准确的NA耦合评估还有助于保持NA耦合的相位一致性,并识别绝热态的平凡交叉。该方法推动了NAMD在现代材料和过程建模中的应用。