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Modified Fourth-Order Kinetic Energy Gradient Expansion with Hartree Potential-Dependent Coefficients.

作者信息

Constantin Lucian A, Fabiano Eduardo, Della Sala Fabio

机构信息

Center for Biomolecular Nanotechnologies @UNILE, Istituto Italiano di Tecnologia , Via Barsanti, I-73010 Arnesano, Italy.

Institute for Microelectronic and Microsystems (CNR-IMM) , Via Monteroni, Campus Unisalento, 73100 Lecce, Italy.

出版信息

J Chem Theory Comput. 2017 Sep 12;13(9):4228-4239. doi: 10.1021/acs.jctc.7b00705. Epub 2017 Aug 30.

Abstract

Using the semiclassical neutral atom theory, we developed a modified fourth-order kinetic energy (KE) gradient expansion (GE4m) that keeps unchanged all the linear-response terms of the uniform electron gas and gives a significant improvement with respect to the known semilocal functionals for both large atoms and jellium surfaces. On the other hand, GE4m is not accurate for light atoms; thus, we modified the GE4m coefficients making them dependent on a novel ingredient, the reduced Hartree potential, recently introduced in the Journal of Chemical Physics 2016, 145, 084110, in the context of exchange functionals. The resulting KE gradient expansion functional, named uGE4m, belongs to the novel class of u-meta-generalized-gradient-approximations (uMGGA) whose members depend on the conventional ingredients (i.e., the reduced gradient and Laplacian of the density) as well as on the reduced Hartree potential. To test uGE4m, we defined an appropriate benchmark (including total KE and KE differences for atoms, molecules and jellium clusters) for gradient expansion functionals, that is, including only those systems which are mainly described by a slowly varying density regime. While most of the GGA and meta-GGA KE functionals (we tested 18 of them) are accurate for some properties and inaccurate for others, uGE4m shows a consistently good performance for all the properties considered. This represents a qualitative boost in the KE functional development and highlights the importance of the reduced Hartree potential for the construction of next-generation KE functionals.

摘要

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