Versatile van der Waals Density Functional Based on a Meta-Generalized Gradient Approximation

A “best-of-both-worlds” van der Waals (vdW) density functional is constructed, seamlessly supplementing the strongly constrained and appropriately normed (SCAN) meta-generalized gradient approximation for short- and intermediate-range interactions with the long-range vdW interaction from rVV10, the...

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Main Authors: Haowei Peng, Zeng-Hui Yang, John P. Perdew, Jianwei Sun
Format: Article
Language:English
Published: American Physical Society 2016-10-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.6.041005
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spelling doaj-2e815571a20e4654af3f33d6b9d57e112020-11-24T23:29:54ZengAmerican Physical SocietyPhysical Review X2160-33082016-10-016404100510.1103/PhysRevX.6.041005Versatile van der Waals Density Functional Based on a Meta-Generalized Gradient ApproximationHaowei PengZeng-Hui YangJohn P. PerdewJianwei SunA “best-of-both-worlds” van der Waals (vdW) density functional is constructed, seamlessly supplementing the strongly constrained and appropriately normed (SCAN) meta-generalized gradient approximation for short- and intermediate-range interactions with the long-range vdW interaction from rVV10, the revised Vydrov–van Voorhis nonlocal correlation functional. The resultant SCAN+rVV10 is the only vdW density functional to date that yields excellent interlayer binding energies and spacings, as well as intralayer lattice constants in 28 layered materials. Its versatility for various kinds of bonding is further demonstrated by its good performance for 22 interactions between molecules; the cohesive energies and lattice constants of 50 solids; the adsorption energy and distance of a benzene molecule on coinage-metal surfaces; the binding energy curves for graphene on Cu(111), Ni(111), and Co(0001) surfaces; and the rare-gas solids. We argue that a good semilocal approximation should (as SCAN does) capture the intermediate-range vdW through its exchange term. We have found an effective range of the vdW interaction between 8 and 16 Å for systems considered here, suggesting that this interaction is negligibly small at the larger distances where it reaches its asymptotic power-law decay.http://doi.org/10.1103/PhysRevX.6.041005
collection DOAJ
language English
format Article
sources DOAJ
author Haowei Peng
Zeng-Hui Yang
John P. Perdew
Jianwei Sun
spellingShingle Haowei Peng
Zeng-Hui Yang
John P. Perdew
Jianwei Sun
Versatile van der Waals Density Functional Based on a Meta-Generalized Gradient Approximation
Physical Review X
author_facet Haowei Peng
Zeng-Hui Yang
John P. Perdew
Jianwei Sun
author_sort Haowei Peng
title Versatile van der Waals Density Functional Based on a Meta-Generalized Gradient Approximation
title_short Versatile van der Waals Density Functional Based on a Meta-Generalized Gradient Approximation
title_full Versatile van der Waals Density Functional Based on a Meta-Generalized Gradient Approximation
title_fullStr Versatile van der Waals Density Functional Based on a Meta-Generalized Gradient Approximation
title_full_unstemmed Versatile van der Waals Density Functional Based on a Meta-Generalized Gradient Approximation
title_sort versatile van der waals density functional based on a meta-generalized gradient approximation
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2016-10-01
description A “best-of-both-worlds” van der Waals (vdW) density functional is constructed, seamlessly supplementing the strongly constrained and appropriately normed (SCAN) meta-generalized gradient approximation for short- and intermediate-range interactions with the long-range vdW interaction from rVV10, the revised Vydrov–van Voorhis nonlocal correlation functional. The resultant SCAN+rVV10 is the only vdW density functional to date that yields excellent interlayer binding energies and spacings, as well as intralayer lattice constants in 28 layered materials. Its versatility for various kinds of bonding is further demonstrated by its good performance for 22 interactions between molecules; the cohesive energies and lattice constants of 50 solids; the adsorption energy and distance of a benzene molecule on coinage-metal surfaces; the binding energy curves for graphene on Cu(111), Ni(111), and Co(0001) surfaces; and the rare-gas solids. We argue that a good semilocal approximation should (as SCAN does) capture the intermediate-range vdW through its exchange term. We have found an effective range of the vdW interaction between 8 and 16 Å for systems considered here, suggesting that this interaction is negligibly small at the larger distances where it reaches its asymptotic power-law decay.
url http://doi.org/10.1103/PhysRevX.6.041005
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AT johnpperdew versatilevanderwaalsdensityfunctionalbasedonametageneralizedgradientapproximation
AT jianweisun versatilevanderwaalsdensityfunctionalbasedonametageneralizedgradientapproximation
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