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简单而精确的密度泛函理论交换能量。

Simple and Accurate Exchange Energy for Density Functional Theory.

机构信息

Department of Physics, Faculty of Science, Naresuan University, Phitsanulok 65000, Thailand.

Thailand Center of Excellence in Physics, Ministry of Higher Education, Science, Research and Innovation, 328 Si Ayutthaya Road, Bangkok 10400, Thailand.

出版信息

Molecules. 2020 Jul 31;25(15):3485. doi: 10.3390/molecules25153485.

Abstract

A non-empirical exchange functional based on an interpolation between two limits of electron density, slowly varying limit and asymptotic limit, is proposed. In the slowly varying limit, we follow the study by Kleinman from 1984 which considered the response of a free-electron gas to an external periodic potential, but further assume that the perturbing potential also induces Bragg diffraction of the Fermi electrons. The interpolation function is motivated by the exact exchange functional of a hydrogen atom. Combined with our recently proposed correlation functional, tests on 56 small molecules show that, for the first-row molecules, the exchange-correlation combo predicts the total energies four times more accurately than the presently available Quantum Monte Carlo results. For the second-row molecules, errors of the core electrons exchange energies can be corrected, leading to the most accurate first- and second-row molecular total energy predictions reported to date despite minimal computational efforts. The calculated bond energies, zero point energies, and dipole moments are also presented, which do not outperform other methods.

摘要

提出了一种基于电子密度两个极限(缓慢变化极限和渐近极限)之间插值的非经验交换泛函。在缓慢变化极限中,我们遵循 Kleinman 于 1984 年的研究,该研究考虑了自由电子气对外部周期势的响应,但进一步假设扰动势也会诱导费米电子的布拉格衍射。插值函数的动机来自于氢原子的精确交换泛函。与我们最近提出的相关泛函结合使用,对 56 个小分子的测试表明,对于第一行分子,交换相关组合预测的总能量比目前可用的量子蒙特卡罗结果准确四倍。对于第二行分子,可以修正核心电子交换能的误差,从而导致迄今为止报道的最准确的第一行和第二行分子总能量预测,尽管计算工作量最小。还给出了计算得到的键能、零点能和偶极矩,它们并不优于其他方法。

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