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Optimization of the r(2)SCAN-3c Composite Electronic-Structure Method for Use with Slater-Type Orbital Basis Sets

[Image: see text] The “Swiss army knife” composite density functional electronic-structure method r(2)SCAN-3c (J. Chem. Phys.2021, 154, 064103) is extended and optimized for the use with Slater-type orbital basis sets. The meta generalized-gradient approximation (meta-GGA) functional r(2)SCAN by Fur...

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Autores principales: Gasevic, Thomas, Stückrath, Julius B., Grimme, Stefan, Bursch, Markus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9255700/
https://www.ncbi.nlm.nih.gov/pubmed/35654439
http://dx.doi.org/10.1021/acs.jpca.2c02951
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author Gasevic, Thomas
Stückrath, Julius B.
Grimme, Stefan
Bursch, Markus
author_facet Gasevic, Thomas
Stückrath, Julius B.
Grimme, Stefan
Bursch, Markus
author_sort Gasevic, Thomas
collection PubMed
description [Image: see text] The “Swiss army knife” composite density functional electronic-structure method r(2)SCAN-3c (J. Chem. Phys.2021, 154, 064103) is extended and optimized for the use with Slater-type orbital basis sets. The meta generalized-gradient approximation (meta-GGA) functional r(2)SCAN by Furness et al. is combined with a tailor-made polarized triple-ζ Slater-type atomic orbital (STO) basis set (mTZ2P), the semiclassical London dispersion correction (D4), and a geometrical counterpoise (gCP) correction. Relativistic effects are treated explicitly with the scalar-relativistic zeroth-order regular approximation (SR-ZORA). The performance of the new implementation is assessed on eight geometry and 74 energy benchmark sets, including the extensive GMTKN55 database as well as recent sets such as ROST61 and IONPI19. In geometry optimizations, the STO-based r(2)SCAN-3c is either on par with or more accurate than the hybrid density functional approximation M06-2X-D3(0)/TZP. In energy calculations, the overall accuracy is similar to the original implementation of r(2)SCAN-3c with Gaussian-type atomic orbitals (GTO), but basic properties, intermolecular noncovalent interactions, and barrier heights are better described with the STO approach, resulting in a lower weighted mean absolute deviation (WTMAD-2(STO) = 7.15 vs 7.50 kcal mol(–1) with the original method) for the GMTKN55 database. The STO-optimized r(2)SCAN-3c outperforms many conventional hybrid/QZ approaches in most common applications at a fraction of their cost. The reliable, robust, and accurate r(2)SCAN-3c implementation with STOs is a promising alternative to the original implementation with GTOs and can be generally used for a broad field of quantum chemical problems.
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spelling pubmed-92557002022-07-06 Optimization of the r(2)SCAN-3c Composite Electronic-Structure Method for Use with Slater-Type Orbital Basis Sets Gasevic, Thomas Stückrath, Julius B. Grimme, Stefan Bursch, Markus J Phys Chem A [Image: see text] The “Swiss army knife” composite density functional electronic-structure method r(2)SCAN-3c (J. Chem. Phys.2021, 154, 064103) is extended and optimized for the use with Slater-type orbital basis sets. The meta generalized-gradient approximation (meta-GGA) functional r(2)SCAN by Furness et al. is combined with a tailor-made polarized triple-ζ Slater-type atomic orbital (STO) basis set (mTZ2P), the semiclassical London dispersion correction (D4), and a geometrical counterpoise (gCP) correction. Relativistic effects are treated explicitly with the scalar-relativistic zeroth-order regular approximation (SR-ZORA). The performance of the new implementation is assessed on eight geometry and 74 energy benchmark sets, including the extensive GMTKN55 database as well as recent sets such as ROST61 and IONPI19. In geometry optimizations, the STO-based r(2)SCAN-3c is either on par with or more accurate than the hybrid density functional approximation M06-2X-D3(0)/TZP. In energy calculations, the overall accuracy is similar to the original implementation of r(2)SCAN-3c with Gaussian-type atomic orbitals (GTO), but basic properties, intermolecular noncovalent interactions, and barrier heights are better described with the STO approach, resulting in a lower weighted mean absolute deviation (WTMAD-2(STO) = 7.15 vs 7.50 kcal mol(–1) with the original method) for the GMTKN55 database. The STO-optimized r(2)SCAN-3c outperforms many conventional hybrid/QZ approaches in most common applications at a fraction of their cost. The reliable, robust, and accurate r(2)SCAN-3c implementation with STOs is a promising alternative to the original implementation with GTOs and can be generally used for a broad field of quantum chemical problems. American Chemical Society 2022-06-02 2022-06-16 /pmc/articles/PMC9255700/ /pubmed/35654439 http://dx.doi.org/10.1021/acs.jpca.2c02951 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Gasevic, Thomas
Stückrath, Julius B.
Grimme, Stefan
Bursch, Markus
Optimization of the r(2)SCAN-3c Composite Electronic-Structure Method for Use with Slater-Type Orbital Basis Sets
title Optimization of the r(2)SCAN-3c Composite Electronic-Structure Method for Use with Slater-Type Orbital Basis Sets
title_full Optimization of the r(2)SCAN-3c Composite Electronic-Structure Method for Use with Slater-Type Orbital Basis Sets
title_fullStr Optimization of the r(2)SCAN-3c Composite Electronic-Structure Method for Use with Slater-Type Orbital Basis Sets
title_full_unstemmed Optimization of the r(2)SCAN-3c Composite Electronic-Structure Method for Use with Slater-Type Orbital Basis Sets
title_short Optimization of the r(2)SCAN-3c Composite Electronic-Structure Method for Use with Slater-Type Orbital Basis Sets
title_sort optimization of the r(2)scan-3c composite electronic-structure method for use with slater-type orbital basis sets
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9255700/
https://www.ncbi.nlm.nih.gov/pubmed/35654439
http://dx.doi.org/10.1021/acs.jpca.2c02951
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