Gan Zecheng, Wang Ziwei, Jiang Shidong, Xu Zhenli, Luijten Erik
Department of Mathematics, University of Michigan, Ann Arbor, Michigan 48109, USA.
Applied Physics Graduate Program, Northwestern University, Evanston, Illinois 60208, USA.
J Chem Phys. 2019 Jul 14;151(2):024112. doi: 10.1063/1.5110628.
Modern particle-based simulations increasingly incorporate polarization charges arising from spatially nonuniform permittivity. For complex dielectric geometries, calculation of these induced many-body effects typically requires numerical solvers based upon boundary-element methods, which very significantly increase the required computational effort. For the special case of dielectric spheres, such as colloids or nanoparticles, we recently proposed a semianalytical spectrally accurate hybrid method that combines the method of moments, the image-charge method, and the fast multipole method. The hybrid method is efficient and accurate even when dielectric spheres are closely packed. Here, we extend the method to the evaluation of direct and induced electrostatic forces and demonstrate how this can be incorporated in molecular dynamics simulations. The choice of the relevant numerical parameters for molecular dynamics simulations is discussed in detail, as well as comparisons to the boundary-element method. As a concrete example, we examine the challenging case of binary crystal structures composed of close-packed dielectric colloidal spheres.
现代基于粒子的模拟越来越多地纳入了由空间非均匀介电常数产生的极化电荷。对于复杂的介电几何结构,计算这些感应多体效应通常需要基于边界元方法的数值求解器,这会极大地增加所需的计算量。对于介电球体的特殊情况,如胶体或纳米颗粒,我们最近提出了一种半解析的谱精确混合方法,该方法结合了矩量法、镜像电荷法和快速多极子法。即使介电球体紧密堆积,该混合方法也高效且准确。在此,我们将该方法扩展到直接和感应静电力的评估,并展示如何将其纳入分子动力学模拟。详细讨论了分子动力学模拟相关数值参数的选择,以及与边界元方法的比较。作为一个具体例子,我们研究了由紧密堆积的介电胶体球组成的二元晶体结构这一具有挑战性的情况。