Performance of SCAN Meta-GGA Functionals on Nonlinear Mechanics of Graphene-Like <i>g</i>-SiC

Although meta-generalized-gradient approximations (meta-GGAs) are believed potentially the most accurate among the efficient first-principles calculations, the performance has not been accessed on the nonlinear mechanical properties of two-dimensional nanomaterials. Graphene, like two-dimensional si...

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Main Author: Qing Peng
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Crystals
Subjects:
Online Access:https://www.mdpi.com/2073-4352/11/2/120
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spelling doaj-71164bd39be44fdab5be522f1d47d1352021-01-28T00:00:52ZengMDPI AGCrystals2073-43522021-01-011112012010.3390/cryst11020120Performance of SCAN Meta-GGA Functionals on Nonlinear Mechanics of Graphene-Like <i>g</i>-SiCQing Peng0Physics Department, King Fahd University of Petroleum & Minerals, Dhahran 31261, Saudi ArabiaAlthough meta-generalized-gradient approximations (meta-GGAs) are believed potentially the most accurate among the efficient first-principles calculations, the performance has not been accessed on the nonlinear mechanical properties of two-dimensional nanomaterials. Graphene, like two-dimensional silicon carbide <i>g</i>-SiC, has a wide direct band-gap with applications in high-power electronics and solar energy. Taken <i>g</i>-SiC as a paradigm, we have investigated the performance of meta-GGA functionals on the nonlinear mechanical properties under large strains, both compressive and tensile, along three deformation modes using Strongly Constrained and Appropriately Normed Semilocal Density Functional (SCAN) as an example. A close comparison suggests that the nonlinear mechanics predicted from SCAN are very similar to that of Perdew-Burke-Ernzerhof (PBE) formulated functional, a standard Density Functional Theory (DFT) functional. The improvement from SCAN calculation over PBE calculation is minor, despite the considerable increase of computing demand. This study could be helpful in selection of density functionals in simulations and modeling of mechanics of materials.https://www.mdpi.com/2073-4352/11/2/120SCANdensity functionalsDFT calculationsmechanical propertiesnonlinear mechanics
collection DOAJ
language English
format Article
sources DOAJ
author Qing Peng
spellingShingle Qing Peng
Performance of SCAN Meta-GGA Functionals on Nonlinear Mechanics of Graphene-Like <i>g</i>-SiC
Crystals
SCAN
density functionals
DFT calculations
mechanical properties
nonlinear mechanics
author_facet Qing Peng
author_sort Qing Peng
title Performance of SCAN Meta-GGA Functionals on Nonlinear Mechanics of Graphene-Like <i>g</i>-SiC
title_short Performance of SCAN Meta-GGA Functionals on Nonlinear Mechanics of Graphene-Like <i>g</i>-SiC
title_full Performance of SCAN Meta-GGA Functionals on Nonlinear Mechanics of Graphene-Like <i>g</i>-SiC
title_fullStr Performance of SCAN Meta-GGA Functionals on Nonlinear Mechanics of Graphene-Like <i>g</i>-SiC
title_full_unstemmed Performance of SCAN Meta-GGA Functionals on Nonlinear Mechanics of Graphene-Like <i>g</i>-SiC
title_sort performance of scan meta-gga functionals on nonlinear mechanics of graphene-like <i>g</i>-sic
publisher MDPI AG
series Crystals
issn 2073-4352
publishDate 2021-01-01
description Although meta-generalized-gradient approximations (meta-GGAs) are believed potentially the most accurate among the efficient first-principles calculations, the performance has not been accessed on the nonlinear mechanical properties of two-dimensional nanomaterials. Graphene, like two-dimensional silicon carbide <i>g</i>-SiC, has a wide direct band-gap with applications in high-power electronics and solar energy. Taken <i>g</i>-SiC as a paradigm, we have investigated the performance of meta-GGA functionals on the nonlinear mechanical properties under large strains, both compressive and tensile, along three deformation modes using Strongly Constrained and Appropriately Normed Semilocal Density Functional (SCAN) as an example. A close comparison suggests that the nonlinear mechanics predicted from SCAN are very similar to that of Perdew-Burke-Ernzerhof (PBE) formulated functional, a standard Density Functional Theory (DFT) functional. The improvement from SCAN calculation over PBE calculation is minor, despite the considerable increase of computing demand. This study could be helpful in selection of density functionals in simulations and modeling of mechanics of materials.
topic SCAN
density functionals
DFT calculations
mechanical properties
nonlinear mechanics
url https://www.mdpi.com/2073-4352/11/2/120
work_keys_str_mv AT qingpeng performanceofscanmetaggafunctionalsonnonlinearmechanicsofgraphenelikeigisic
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