Christopoulou Georgia, Freibert Antonia, Worth Graham A
Department of Chemistry, University College London, London WC1H 0AJ, United Kingdom.
J Chem Phys. 2021 Mar 28;154(12):124127. doi: 10.1063/5.0043720.
The Direct Dynamics variational Multi-Configurational Gaussian (DD-vMCG) method provides a fully quantum mechanical solution to the time-dependent Schrödinger equation for the time evolution of nuclei with potential surfaces calculated on-the-fly using a quantum chemistry program. Initial studies have shown its potential for flexible and accurate simulations of non-adiabatic excited-state molecular dynamics. In this paper, we present developments to the DD-vMCG algorithm that improve both its accuracy and efficiency. First, a new, efficient parallel algorithm to control the DD-vMCG database of quantum chemistry points is presented along with improvements to the Shepard interpolation scheme. Second, the use of symmetry in describing the potential surfaces is introduced along with a new phase convention in the propagation diabatization. Benchmark calculations on the allene radical cation including all degrees of freedom then show that the new scheme is able to produce a consistent non-adiabatic coupling vector field. This new DD-vMCG version thus opens the route for effectively and accurately treating complex chemical systems using quantum dynamics simulations.
直接动力学变分多组态高斯(DD-vMCG)方法为原子核的含时薛定谔方程提供了一种完全量子力学的解决方案,其势能面通过量子化学程序实时计算得到。初步研究表明,该方法在非绝热激发态分子动力学的灵活且精确模拟方面具有潜力。在本文中,我们对DD-vMCG算法进行了改进,提高了其精度和效率。首先,提出了一种新的高效并行算法来控制量子化学点的DD-vMCG数据库,并对谢泼德插值方案进行了改进。其次,引入了在描述势能面时的对称性以及传播 diabatic 化中的新相位约定。然后对包括所有自由度的丙二烯自由基阳离子进行的基准计算表明,新方案能够产生一致的非绝热耦合矢量场。因此,这个新的DD-vMCG版本为使用量子动力学模拟有效且准确地处理复杂化学系统开辟了道路。