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Performance of Made Simple Meta-GGA Functionals with rVV10 Nonlocal Correlation for H(2) + Cu(111), D(2) + Ag(111), H(2) + Au(111), and D(2) + Pt(111)
[Image: see text] Accurately modeling heterogeneous catalysis requires accurate descriptions of rate-controlling elementary reactions of molecules on metal surfaces, but standard density functionals (DFs) are not accurate enough for this. The problem can be solved with the specific reaction paramete...
Autores principales: | , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical
Society
2021
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162760/ https://www.ncbi.nlm.nih.gov/pubmed/34084265 http://dx.doi.org/10.1021/acs.jpcc.0c11034 |
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author | Smeets, Egidius W. F. Kroes, Geert-Jan |
author_facet | Smeets, Egidius W. F. Kroes, Geert-Jan |
author_sort | Smeets, Egidius W. F. |
collection | PubMed |
description | [Image: see text] Accurately modeling heterogeneous catalysis requires accurate descriptions of rate-controlling elementary reactions of molecules on metal surfaces, but standard density functionals (DFs) are not accurate enough for this. The problem can be solved with the specific reaction parameter approach to density functional theory (SRP-DFT), but the transferability of SRP DFs among chemically related systems is limited. We combine the MS-PBEl, MS-B86bl, and MS-RPBEl semilocal made simple (MS) meta-generalized gradient approximation (GGA) (mGGA) DFs with rVV10 nonlocal correlation, and we evaluate their performance for the hydrogen (H(2)) + Cu(111), deuterium (D(2)) + Ag(111), H(2) + Au(111), and D(2) + Pt(111) gas-surface systems. The three MS mGGA DFs that have been combined with rVV10 nonlocal correlation were not fitted to reproduce particular experiments, nor has the b parameter present in rVV10 been reoptimized. Of the three DFs obtained the MS-PBEl-rVV10 DF yields an excellent description of van der Waals well geometries. The three original MS mGGA DFs gave a highly accurate description of the metals, which was comparable in quality to that obtained with the PBEsol DF. Here, we find that combining the three original MS mGGA DFs with rVV10 nonlocal correlation comes at the cost of a slightly less accurate description of the metal. However, the description of the metal obtained in this way is still better than the descriptions obtained with SRP DFs specifically optimized for individual systems. Using the Born–Oppenheimer static surface (BOSS) model, simulations of molecular beam dissociative chemisorption experiments yield chemical accuracy for the D(2) + Ag(111) and D(2) + Pt(111) systems. A comparison between calculated and measured E(1/2)(ν, J) parameters describing associative desorption suggests chemical accuracy for the associative desorption of H(2) from Au(111) as well. Our results suggest that ascending Jacob’s ladder to the mGGA rung yields increasingly more accurate results for gas-surface reactions of H(2) (D(2)) interacting with late transition metals. |
format | Online Article Text |
id | pubmed-8162760 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | American Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-81627602021-06-01 Performance of Made Simple Meta-GGA Functionals with rVV10 Nonlocal Correlation for H(2) + Cu(111), D(2) + Ag(111), H(2) + Au(111), and D(2) + Pt(111) Smeets, Egidius W. F. Kroes, Geert-Jan J Phys Chem C Nanomater Interfaces [Image: see text] Accurately modeling heterogeneous catalysis requires accurate descriptions of rate-controlling elementary reactions of molecules on metal surfaces, but standard density functionals (DFs) are not accurate enough for this. The problem can be solved with the specific reaction parameter approach to density functional theory (SRP-DFT), but the transferability of SRP DFs among chemically related systems is limited. We combine the MS-PBEl, MS-B86bl, and MS-RPBEl semilocal made simple (MS) meta-generalized gradient approximation (GGA) (mGGA) DFs with rVV10 nonlocal correlation, and we evaluate their performance for the hydrogen (H(2)) + Cu(111), deuterium (D(2)) + Ag(111), H(2) + Au(111), and D(2) + Pt(111) gas-surface systems. The three MS mGGA DFs that have been combined with rVV10 nonlocal correlation were not fitted to reproduce particular experiments, nor has the b parameter present in rVV10 been reoptimized. Of the three DFs obtained the MS-PBEl-rVV10 DF yields an excellent description of van der Waals well geometries. The three original MS mGGA DFs gave a highly accurate description of the metals, which was comparable in quality to that obtained with the PBEsol DF. Here, we find that combining the three original MS mGGA DFs with rVV10 nonlocal correlation comes at the cost of a slightly less accurate description of the metal. However, the description of the metal obtained in this way is still better than the descriptions obtained with SRP DFs specifically optimized for individual systems. Using the Born–Oppenheimer static surface (BOSS) model, simulations of molecular beam dissociative chemisorption experiments yield chemical accuracy for the D(2) + Ag(111) and D(2) + Pt(111) systems. A comparison between calculated and measured E(1/2)(ν, J) parameters describing associative desorption suggests chemical accuracy for the associative desorption of H(2) from Au(111) as well. Our results suggest that ascending Jacob’s ladder to the mGGA rung yields increasingly more accurate results for gas-surface reactions of H(2) (D(2)) interacting with late transition metals. American Chemical Society 2021-04-21 2021-05-06 /pmc/articles/PMC8162760/ /pubmed/34084265 http://dx.doi.org/10.1021/acs.jpcc.0c11034 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/). |
spellingShingle | Smeets, Egidius W. F. Kroes, Geert-Jan Performance of Made Simple Meta-GGA Functionals with rVV10 Nonlocal Correlation for H(2) + Cu(111), D(2) + Ag(111), H(2) + Au(111), and D(2) + Pt(111) |
title | Performance of Made Simple Meta-GGA Functionals with
rVV10 Nonlocal Correlation for H(2) + Cu(111), D(2) + Ag(111), H(2) + Au(111), and D(2) + Pt(111) |
title_full | Performance of Made Simple Meta-GGA Functionals with
rVV10 Nonlocal Correlation for H(2) + Cu(111), D(2) + Ag(111), H(2) + Au(111), and D(2) + Pt(111) |
title_fullStr | Performance of Made Simple Meta-GGA Functionals with
rVV10 Nonlocal Correlation for H(2) + Cu(111), D(2) + Ag(111), H(2) + Au(111), and D(2) + Pt(111) |
title_full_unstemmed | Performance of Made Simple Meta-GGA Functionals with
rVV10 Nonlocal Correlation for H(2) + Cu(111), D(2) + Ag(111), H(2) + Au(111), and D(2) + Pt(111) |
title_short | Performance of Made Simple Meta-GGA Functionals with
rVV10 Nonlocal Correlation for H(2) + Cu(111), D(2) + Ag(111), H(2) + Au(111), and D(2) + Pt(111) |
title_sort | performance of made simple meta-gga functionals with
rvv10 nonlocal correlation for h(2) + cu(111), d(2) + ag(111), h(2) + au(111), and d(2) + pt(111) |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162760/ https://www.ncbi.nlm.nih.gov/pubmed/34084265 http://dx.doi.org/10.1021/acs.jpcc.0c11034 |
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