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从头算方法计算分子的电性、磁性和几何性质。

The ab initio calculation of molecular electric, magnetic and geometric properties.

机构信息

Centre for Theoretical and Computational Chemistry, Department of Chemistry, University of Tromsø, N-9037 Tromsø, Norway.

出版信息

Phys Chem Chem Phys. 2011 Feb 21;13(7):2627-51. doi: 10.1039/c0cp01647k. Epub 2010 Dec 22.

Abstract

We give an account of some recent advances in the development of ab initio methods for the calculation of molecular response properties, involving electric, magnetic, and geometric perturbations. Particular attention is given to properties in which the basis functions depend explicitly both on time and on the applied perturbations such as perturbations involving nuclear displacements or external magnetic fields when London atomic orbitals are used. We summarize a general framework based on the quasienergy for the calculation of arbitrary-order molecular properties using the elements of the density matrix in the atomic-orbital basis as the basic variables. We demonstrate that the necessary perturbed density matrices of arbitrary order can be determined from a set of linear equations that have the same formal structure as the set of linear equations encountered when determining the linear response equations (or time-dependent self-consistent-field equations). Additional components needed to calculate properties involving perturbation-dependent basis sets are flexible one- and two-electron integral techniques for geometric or magnetic-field differentiated integrals; in Kohn-Sham density-functional theory (KS-DFT), we also need to calculate derivatives of the exchange-correlation functional. We describe a recent proposal for evaluating these contributions based on automatic differentiation. Within this framework, it is now possible to calculate any molecular property for an arbitrary self-consistent-field reference state, including two- and four-component relativistic self-consistent-field wave functions. Examples of calculations that can be performed with this formulation are presented.

摘要

我们介绍了一些近期在从头算方法的发展方面的进展,这些方法用于计算分子的响应性质,包括电、磁和几何微扰。特别关注的是那些基函数显式地同时依赖于时间和所施加的微扰的性质,例如当使用伦敦原子轨道时涉及核位移或外磁场的微扰。我们总结了一个基于准能量的通用框架,用于使用原子轨道基中的密度矩阵元素作为基本变量来计算任意阶的分子性质。我们证明,任意阶的所需微扰密度矩阵可以从一组线性方程确定,这些线性方程具有与确定线性响应方程(或含时自洽场方程)时所遇到的线性方程相同的形式结构。对于涉及微扰相关基集的性质计算,还需要灵活的单电子和双电子积分技术,用于几何或磁场微分积分;在 Kohn-Sham 密度泛函理论(KS-DFT)中,我们还需要计算交换相关泛函的导数。我们描述了一种最近基于自动微分的评估这些贡献的建议。在这个框架内,现在可以为任意自洽场参考态计算任何分子性质,包括双分量和四分量相对论自洽场波函数。展示了可以用这种方法进行的计算示例。

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