Performance of modern density functional theory for the prediction of hyperfine structure: meta-GGA and double hybrid functionals

The performance of modern density functionals for the prediction of molecular hyperfine couplings is investigated for a series of small radicals and transition metal complexes. Besides the established BP86 (GGA) and B3LYP (hybrid) functionals we have tested two prototypical members of emerging class...

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Published in:Molecular Physics
Main Authors: Kossmann, S., Kirchner, B., Neese, F.
Format: Article in Journal/Newspaper
Language:English
Published: 2007
Subjects:
Online Access:http://hdl.handle.net/21.11116/0000-0008-3500-C
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spelling ftpubman:oai:pure.mpg.de:item_3293456 2023-08-27T04:11:26+02:00 Performance of modern density functional theory for the prediction of hyperfine structure: meta-GGA and double hybrid functionals Kossmann, S. Kirchner, B. Neese, F. 2007-10 http://hdl.handle.net/21.11116/0000-0008-3500-C eng eng info:eu-repo/semantics/altIdentifier/doi/10.1080/00268970701604655 http://hdl.handle.net/21.11116/0000-0008-3500-C Molecular Physics info:eu-repo/semantics/article 2007 ftpubman https://doi.org/10.1080/00268970701604655 2023-08-02T00:30:02Z The performance of modern density functionals for the prediction of molecular hyperfine couplings is investigated for a series of small radicals and transition metal complexes. Besides the established BP86 (GGA) and B3LYP (hybrid) functionals we have tested two prototypical members of emerging classes of density functionals, namely the TPSS meta-GGA functional (together with its hybrid version TPSSh) and the B2PLYP double-hybrid functional. The latter is the first member of a ‘fifth-rung’ density functional that incorporates a fraction of orbital dependent nonlocal correlation energy estimated at the level of second-order many-body perturbation theory. Since this approach is non-variational, it becomes necessary to derive and implement the so-called ‘relaxed’ densities in order to properly predict hyperfine couplings. The necessary formalism is described in some detail and the new method has been implemented into the ORCA electronic structure program. The results of extended test calculations reveal that TPSS is superior to BP86. The hybrid variant TPSSh is at least as accurate or better than the B3LYP functional and significantly superior to the non-hybrid TPSS variant. The B2PLYP functional also leads to accurate predictions and is a clear improvement for the difficult metal nucleus HFCs. However, it also showed a few significant outliers in the test set which points to a somewhat reduced stability in the method. The latter effect is largely attributed to the elevated fraction Hartree–Fock exchange (53%) and to some extent also to the perturbative correction. Article in Journal/Newspaper Orca Max Planck Society: MPG.PuRe Hartree ENVELOPE(-44.716,-44.716,-60.783,-60.783) Molecular Physics 105 15-16 2049 2071
institution Open Polar
collection Max Planck Society: MPG.PuRe
op_collection_id ftpubman
language English
description The performance of modern density functionals for the prediction of molecular hyperfine couplings is investigated for a series of small radicals and transition metal complexes. Besides the established BP86 (GGA) and B3LYP (hybrid) functionals we have tested two prototypical members of emerging classes of density functionals, namely the TPSS meta-GGA functional (together with its hybrid version TPSSh) and the B2PLYP double-hybrid functional. The latter is the first member of a ‘fifth-rung’ density functional that incorporates a fraction of orbital dependent nonlocal correlation energy estimated at the level of second-order many-body perturbation theory. Since this approach is non-variational, it becomes necessary to derive and implement the so-called ‘relaxed’ densities in order to properly predict hyperfine couplings. The necessary formalism is described in some detail and the new method has been implemented into the ORCA electronic structure program. The results of extended test calculations reveal that TPSS is superior to BP86. The hybrid variant TPSSh is at least as accurate or better than the B3LYP functional and significantly superior to the non-hybrid TPSS variant. The B2PLYP functional also leads to accurate predictions and is a clear improvement for the difficult metal nucleus HFCs. However, it also showed a few significant outliers in the test set which points to a somewhat reduced stability in the method. The latter effect is largely attributed to the elevated fraction Hartree–Fock exchange (53%) and to some extent also to the perturbative correction.
format Article in Journal/Newspaper
author Kossmann, S.
Kirchner, B.
Neese, F.
spellingShingle Kossmann, S.
Kirchner, B.
Neese, F.
Performance of modern density functional theory for the prediction of hyperfine structure: meta-GGA and double hybrid functionals
author_facet Kossmann, S.
Kirchner, B.
Neese, F.
author_sort Kossmann, S.
title Performance of modern density functional theory for the prediction of hyperfine structure: meta-GGA and double hybrid functionals
title_short Performance of modern density functional theory for the prediction of hyperfine structure: meta-GGA and double hybrid functionals
title_full Performance of modern density functional theory for the prediction of hyperfine structure: meta-GGA and double hybrid functionals
title_fullStr Performance of modern density functional theory for the prediction of hyperfine structure: meta-GGA and double hybrid functionals
title_full_unstemmed Performance of modern density functional theory for the prediction of hyperfine structure: meta-GGA and double hybrid functionals
title_sort performance of modern density functional theory for the prediction of hyperfine structure: meta-gga and double hybrid functionals
publishDate 2007
url http://hdl.handle.net/21.11116/0000-0008-3500-C
long_lat ENVELOPE(-44.716,-44.716,-60.783,-60.783)
geographic Hartree
geographic_facet Hartree
genre Orca
genre_facet Orca
op_source Molecular Physics
op_relation info:eu-repo/semantics/altIdentifier/doi/10.1080/00268970701604655
http://hdl.handle.net/21.11116/0000-0008-3500-C
op_doi https://doi.org/10.1080/00268970701604655
container_title Molecular Physics
container_volume 105
container_issue 15-16
container_start_page 2049
op_container_end_page 2071
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