Rafat Michel, Popelier Paul L A
School of Chemistry, University of Manchester, Faraday Building, North Campus, Manchester M60 1QD, Great Britain, United Kingdom.
J Comput Chem. 2007 Mar;28(4):832-8. doi: 10.1002/jcc.20610.
The construction of a high-rank multipolar force field (for peptides) is a complex task, leading to several intermediate questions in need of a clear answer. Here we focus on the convergence of the (electrostatic) multipolar expansion at medium and long range. Using molecular electron densities, quantum chemical topology (QCT) defines the atoms as finite volumes, each endowed with multipole moments. The terms in the multipole expansion are grouped according to powers of the internuclear distance, R(-L). Given two atom types at a given distance, we determine which rank (L) is necessary for the electrostatic energy to converge to the exact interaction energy within a certain error. With this information, the rank of the expansion for each interaction can be adapted to the required accuracy and the available computing power.
构建一个高阶多极力场(用于肽)是一项复杂的任务,这引发了几个需要明确答案的中间问题。在这里,我们关注(静电)多极展开在中长程的收敛情况。利用分子电子密度,量子化学拓扑学(QCT)将原子定义为有限体积,每个原子都具有多极矩。多极展开中的项根据核间距R(-L)的幂次进行分组。给定在特定距离的两种原子类型,我们确定静电能在一定误差内收敛到精确相互作用能所需的阶数(L)。有了这些信息,每种相互作用展开的阶数可以根据所需精度和可用计算能力进行调整。