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An efficient algorithm for multipole energies and derivatives based on spherical harmonics and extensions to particle mesh Ewald

机译:基于球谐函数和粒子网格Ewald扩展的高效多极能量及其导数算法

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摘要

Next-generation molecular force fields deliver accurate descriptions of non-covalent interactions by employing more elaborate functional forms than their predecessors. Much work has been dedicated to improving the description of the electrostatic potential (ESP) generated by these force fields. A common approach to improving the ESP is by augmenting the point charges on each center with higher-order multipole moments. The resulting anisotropy greatly improves the directionality of the non-covalent bonding, with a concomitant increase in computational cost. In this work, we develop an efficient strategy for enumerating multipole interactions, by casting an efficient spherical harmonic based approach within a particle mesh Ewald (PME) framework. Although the derivation involves lengthy algebra, the final expressions are relatively compact, yielding an approach that can efficiently handle both finite and periodic systems without imposing any approximations beyond PME. Forces and torques are readily obtained, making our method well suited to modern molecular dynamics simulations.
机译:下一代分子力场通过采用比其前身更为精细的功能形式,准确地描述了非共价相互作用。许多工作致力于改善对这些力场产生的静电势(ESP)的描述。改善ESP的常用方法是通过使用高阶多极矩增加每个中心的点电荷。所产生的各向异性极大地改善了非共价键的方向性,同时增加了计算成本。在这项工作中,我们通过在粒子网格Ewald(PME)框架内转换基于球谐函数的有效方法,开发了一种枚举多极相互作用的有效策略。尽管推导涉及冗长的代数,但最终表达式相对紧凑,从而产生一种可以有效处理有限和周期系统的方法,而无需施加超出PME的任何近似值。力和扭矩很容易获得,这使我们的方法非常适合现代分子动力学模拟。

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