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用于从头算分子电子能量表面的原子光谱方法:从小分子方法向适用于生物分子的方法转变

Atomic Spectral Methods for Ab Initio Molecular Electronic Energy Surfaces: Transitioning From Small-Molecule to Biomolecular-Suitable Approaches.

作者信息

Mills Jeffrey D, Ben-Nun Michal, Rollin Kyle, Bromley Michael W J, Li Jiabo, Hinde Robert J, Winstead Carl L, Sheehy Jeffrey A, Boatz Jerry A, Langhoff Peter W

机构信息

Air Force Research Laboratory , 10 East Saturn Boulevard, Edwards AFB, California 93524-7680, United States.

Predictive Science, Inc. , 9990 Mesa Rim Road #170, San Diego, California 92121, United States.

出版信息

J Phys Chem B. 2016 Aug 25;120(33):8321-37. doi: 10.1021/acs.jpcb.6b02021. Epub 2016 May 27.

Abstract

Continuing attention has addressed incorportation of the electronically dynamical attributes of biomolecules in the largely static first-generation molecular-mechanical force fields commonly employed in molecular-dynamics simulations. We describe here a universal quantum-mechanical approach to calculations of the electronic energy surfaces of both small molecules and large aggregates on a common basis which can include such electronic attributes, and which also seems well-suited to adaptation in ab initio molecular-dynamics applications. In contrast to the more familiar orbital-product-based methodologies employed in traditional small-molecule computational quantum chemistry, the present approach is based on an "ex-post-facto" method in which Hamiltonian matrices are evaluated prior to wave function antisymmetrization, implemented here in the support of a Hilbert space of orthonormal products of many-electron atomic spectral eigenstates familiar from the van der Waals theory of long-range interactions. The general theory in its various forms incorporates the early semiempirical atoms- and diatomics-in-molecules approaches of Moffitt, Ellison, Tully, Kuntz, and others in a comprehensive mathematical setting, and generalizes the developments of Eisenschitz, London, Claverie, and others addressing electron permutation symmetry adaptation issues, completing these early attempts to treat van der Waals and chemical forces on a common basis. Exact expressions are obtained for molecular Hamiltonian matrices and for associated energy eigenvalues as sums of separate atomic and interaction-energy terms, similar in this respect to the forms of classical force fields. The latter representation is seen to also provide a long-missing general definition of the energies of individual atoms and of their interactions within molecules and matter free from subjective additional constraints. A computer code suite is described for calculations of the many-electron atomic eigenspectra and the pairwise-atomic Hamiltonian matrices required for practical applications. These matrices can be retained as functions of scalar atomic-pair separations and employed in assembling aggregate Hamiltonian matrices, with Wigner rotation matrices providing analytical representations of their angular degrees of freedom. In this way, ab initio potential energy surfaces are obtained in the complete absence of repeated evaluations and transformations of the one- and two-electron integrals at different molecular geometries required in most ab inito molecular calculations, with large Hamiltonian matrix assembly simplified and explicit diagonalizations avoided employing partitioning and Brillouin-Wigner or Rayleigh-Schrödinger perturbation theory. Illustrative applications of the important components of the formalism, selected aspects of the scaling of the approach, and aspects of "on-the-fly" interfaces with Monte Carlo and molecular-dynamics methods are described in anticipation of subsequent applications to biomolecules and other large aggregates.

摘要

持续的关注聚焦于将生物分子的电子动力学属性纳入分子动力学模拟中通常使用的基本上静态的第一代分子力学力场。我们在此描述一种通用的量子力学方法,用于在共同基础上计算小分子和大聚集体的电子能量表面,该方法可以包含此类电子属性,并且似乎也非常适合用于从头算分子动力学应用的改编。与传统小分子计算量子化学中使用的更为熟悉的基于轨道乘积的方法不同,本方法基于一种“事后”方法,其中哈密顿矩阵在波函数反对称化之前进行评估,在此实现是为了支持从范德华长程相互作用理论中熟悉的多电子原子光谱本征态的正交乘积的希尔伯特空间。其各种形式的一般理论在全面的数学框架中纳入了莫菲特、埃里森、塔利、昆茨等人早期的半经验分子中原子和双原子方法,并推广了艾森施茨、伦敦、克拉韦里等人针对电子置换对称性适配问题的发展,完成了这些早期在共同基础上处理范德华力和化学力的尝试。对于分子哈密顿矩阵和相关能量本征值,得到了精确表达式,它们是单独的原子和相互作用能项的总和,在这方面类似于经典力场的形式。后一种表示形式还提供了长期缺失的单个原子及其在分子和物质中相互作用能量的通用定义,且没有主观的额外约束。描述了一个计算机代码套件,用于计算实际应用所需的多电子原子本征光谱和成对原子哈密顿矩阵。这些矩阵可以保留为标量原子对间距的函数,并用于组装聚集体哈密顿矩阵,维格纳旋转矩阵提供其角自由度的解析表示。通过这种方式,在完全不存在大多数从头算分子计算中在不同分子几何构型下对单电子和双电子积分进行重复评估和变换的情况下,获得了从头算势能面,简化了大型哈密顿矩阵的组装,并避免了使用分区以及布里渊 - 维格纳或瑞利 - 薛定谔微扰理论进行显式对角化。在预期随后应用于生物分子和其他大聚集体的情况下,描述了该形式体系重要组成部分的说明性应用、该方法缩放的选定方面以及与蒙特卡罗和分子动力学方法的“即时”接口的方面。

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