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带有密度拟合的多组分密度泛函理论

Multicomponent density functional theory with density fitting.

作者信息

Mejía-Rodríguez Daniel, de la Lande Aurélien

机构信息

Laboratoire de Chimie Physique, Université Paris Sud/CNRS, Université Paris Saclay, 15 Avenue Jean Perrin, 91405 Orsay, France.

出版信息

J Chem Phys. 2019 May 7;150(17):174115. doi: 10.1063/1.5078596.

DOI:10.1063/1.5078596
PMID:31067862
Abstract

Multicomponent Density Functional Theory (MDFT) is a promising methodology to incorporate nuclear quantum effects, such as zero-point energy or tunneling, or to simulate other types of particles such as muons or positrons using particle densities as basic quantities. As for standard electronic DFT, a still ongoing challenge is to achieve the most efficient implementations. We introduce a multicomponent DFT implementation within the framework of auxiliary DFT, focusing on molecular systems comprising electrons and quantum protons. We introduce a dual variational procedure to determine auxiliary electron and proton densities which leads to a succession of approximate energy expressions. Electronic and protonic fitted densities are employed in (i) electron-electron, proton-proton, and electron-proton classical Coulomb interactions and (ii) electron exchange-correlation, proton-proton exchange, and electron-proton correlation (EPC) potentials. If needed, exact exchange among electrons or among protons is computed by the variational fitting of the corresponding Fock potential. The implementation is carried out in deMon2k. We test various electron proton correlation functionals on proton affinities. We find that auxiliary densities can be safely used in electron-electron, proton-proton, and electron-proton classical Coulomb interactions, as well as in EPC, albeit with some precautions related to the choice of the electronic auxiliary basis set that must be flexible enough. Computational tests reported indicate that introduction of density fitting in MDFT is clearly advantageous in terms of computational effort with good scaling properties with respect to the number of electrons and protons treated at the DFT level.

摘要

多组分密度泛函理论(MDFT)是一种很有前景的方法,可用于纳入核量子效应,如零点能或隧穿效应,或者以粒子密度作为基本量来模拟其他类型的粒子,如μ子或正电子。与标准电子密度泛函理论一样,一个仍在持续的挑战是实现最有效的算法。我们在辅助密度泛函理论框架内引入了一种多组分密度泛函理论算法,重点关注包含电子和量子质子的分子体系。我们引入了一种双重变分程序来确定辅助电子密度和质子密度,这会产生一系列近似能量表达式。电子拟合密度和质子拟合密度用于(i)电子 - 电子、质子 - 质子以及电子 - 质子经典库仑相互作用,以及(ii)电子交换 - 关联、质子 - 质子交换和电子 - 质子关联(EPC)势。如有需要,通过对相应福克势进行变分拟合来计算电子之间或质子之间的精确交换。该算法在deMon2k中实现。我们在质子亲和能上测试了各种电子 - 质子相关泛函。我们发现,辅助密度可安全地用于电子 - 电子、质子 - 质子以及电子 - 质子经典库仑相互作用,以及EPC中,不过在选择电子辅助基组时需要一些注意事项,该基组必须足够灵活。所报道的计算测试表明,在MDFT中引入密度拟合在计算量方面明显具有优势,并且相对于DFT水平处理的电子和质子数量具有良好的缩放性质。

相似文献

1
Multicomponent density functional theory with density fitting.带有密度拟合的多组分密度泛函理论
J Chem Phys. 2019 May 7;150(17):174115. doi: 10.1063/1.5078596.
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Development of a practical multicomponent density functional for electron-proton correlation to produce accurate proton densities.开发一种实用的多分量密度泛函用于电子-质子相关,以产生精确的质子密度。
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Properties of the exact universal functional in multicomponent density functional theory.多组分密度泛函理论中精确泛函的性质。
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Multicomponent Density Functional Theory: Impact of Nuclear Quantum Effects on Proton Affinities and Geometries.多组分密度泛函理论:核量子效应对质子亲和势和几何结构的影响
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