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Atomic spectral-product representations of molecular electronic structure: metricudmatrices and atomic-product composition of molecular eigenfunctions

机译:分子电子结构的原子光谱产物表示:度量 ud分子本征函数的矩阵和原子积组成

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摘要

Recent progress is reported in development of ab initio computational methods for the electronic structures of molecules employing the many-electron eigenstates of constituent atoms in spectral-product forms. The approach provides a universal atomic-product description of the electronic structure of matter as an alternative to more commonly employed valence-bond- or molecular-orbital-based representations. The Hamiltonian matrix in this representation is seen to comprise a sum over atomic energies and a pairwise sum over Coulombic interaction terms that depend only on the separations of the individual atomic pairs. Overall electron antisymmetry can be enforced by unitary transformation when appropriate, rather than as a possibly encumbering or unnecessary global constraint. The matrix representative of the antisymmetrizer in the spectral-product basis, which is equivalent to the metric matrix of the corresponding explicitly antisymmetric basis, provides the required transformation to antisymmetric or linearly independent states after Hamiltonian evaluation. Particular attention is focused in the present report on properties of the metric matrix and on the atomic-product compositions of molecular eigenstates as described in the spectral-product representations. Illustrative calculations are reported for simple but prototypically important diatomic (H_2, CH) and triatomic (H_3, CH_2) molecules employing algorithms and computer codes devised recently for this purpose. This particular implementation of the approach combines Slater-orbital-based one- and two-electron integral evaluations, valence-bond constructions of standard tableau functions and matrices, and transformations to atomic eigenstate-product representations. The calculated metric matrices and corresponding potential energy surfaces obtained in this way elucidate a number of aspects of the spectral-product development, including the nature of closure in the representation, the general redundancy or linear dependence of its explicitly antisymmetrized form, the convergence of the apparently disparate atomic-product and explicitly antisymmetrized atomic-product forms to a common invariant subspace, and the nature of a chemical bonding descriptor provided by the atomic-product compositions of molecular eigenstates. Concluding remarks indicate additional studies in progress and the prognosis for performing atomic spectral-product calculations more generally and efficiently.ud
机译:据报道,利用光谱积形式的组成原子的多电子本征态,对分子的电子结构进行了从头算的计算方法的最新进展。该方法提供了物质电子结构的通用原子产物描述,以替代更常用的基于价键或分子轨道的表示。可以看到在该表示中的哈密顿矩阵包括原子能的和和库仑相互作用项的成对和,后者仅取决于单个原子对的间隔。整体电子反对称性可以在适当的时候通过transformation变来强制实施,而不是作为可能的阻碍或不必要的全局约束。以频谱积为基础的代表反对称性的矩阵(等同于相应的显式反对称性的度量矩阵)在汉密尔顿评估后提供了向反对称或线性独立状态的转换。在本报告中,特别关注的是度量矩阵的属性以及光谱本征表示中描述的分子本征态的原子产物组成。报告了使用最近为此目的设计的算法和计算机代码对简单但原型上重要的双原子(H_2,CH)和三原子(H_3,CH_2)分子进行的示例性计算。该方法的这种特定实现方式结合了基于Slater轨道的单电子和二电子积分评估,标准Tableau函数和矩阵的价键构造以及对原子本征态表示的转换。以这种方式获得的计算度量矩阵和相应的势能面阐明了频谱积开发的许多方面,包括表示形式的闭合性质,其显式反对称形式的一般冗余或线性相关性,到一个不变的子空间,显然有截然不同的原子积和明显地反对称的原子积形式,以及分子本征态的原子积组成所提供的化学键描述符的性质。结束语表明正在进行其他研究,并且可以更普遍,更有效地进行原子光谱产物计算的预后。

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