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Outer-valence Electron Spectra of Prototypical Aromatic Heterocycles from an Optimally Tuned Range-Separated Hybrid Functional

[Image: see text] Density functional theory with optimally tuned range-separated hybrid (OT-RSH) functionals has been recently suggested [Refaely-Abramson et al. Phys. Rev. Lett.2012, 109, 226405] as a nonempirical approach to predict the outer-valence electronic structure of molecules with the same...

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Autores principales: Egger, David A., Weissman, Shira, Refaely-Abramson, Sivan, Sharifzadeh, Sahar, Dauth, Matthias, Baer, Roi, Kümmel, Stephan, Neaton, Jeffrey B., Zojer, Egbert, Kronik, Leeor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4020925/
https://www.ncbi.nlm.nih.gov/pubmed/24839410
http://dx.doi.org/10.1021/ct400956h
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author Egger, David A.
Weissman, Shira
Refaely-Abramson, Sivan
Sharifzadeh, Sahar
Dauth, Matthias
Baer, Roi
Kümmel, Stephan
Neaton, Jeffrey B.
Zojer, Egbert
Kronik, Leeor
author_facet Egger, David A.
Weissman, Shira
Refaely-Abramson, Sivan
Sharifzadeh, Sahar
Dauth, Matthias
Baer, Roi
Kümmel, Stephan
Neaton, Jeffrey B.
Zojer, Egbert
Kronik, Leeor
author_sort Egger, David A.
collection PubMed
description [Image: see text] Density functional theory with optimally tuned range-separated hybrid (OT-RSH) functionals has been recently suggested [Refaely-Abramson et al. Phys. Rev. Lett.2012, 109, 226405] as a nonempirical approach to predict the outer-valence electronic structure of molecules with the same accuracy as many-body perturbation theory. Here, we provide a quantitative evaluation of the OT-RSH approach by examining its performance in predicting the outer-valence electron spectra of several prototypical gas-phase molecules, from aromatic rings (benzene, pyridine, and pyrimidine) to more complex organic systems (terpyrimidinethiol and copper phthalocyanine). For a range up to several electronvolts away from the frontier orbital energies, we find that the outer-valence electronic structure obtained from the OT-RSH method agrees very well (typically within ∼0.1–0.2 eV) with both experimental photoemission and theoretical many-body perturbation theory data in the GW approximation. In particular, we find that with new strategies for an optimal choice of the short-range fraction of Fock exchange, the OT-RSH approach offers a balanced description of localized and delocalized states. We discuss in detail the sole exception found—a high-symmetry orbital, particular to small aromatic rings, which is relatively deep inside the valence state manifold. Overall, the OT-RSH method is an accurate DFT-based method for outer-valence electronic structure prediction for such systems and is of essentially the same level of accuracy as contemporary GW approaches, at a reduced computational cost.
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spelling pubmed-40209252014-05-15 Outer-valence Electron Spectra of Prototypical Aromatic Heterocycles from an Optimally Tuned Range-Separated Hybrid Functional Egger, David A. Weissman, Shira Refaely-Abramson, Sivan Sharifzadeh, Sahar Dauth, Matthias Baer, Roi Kümmel, Stephan Neaton, Jeffrey B. Zojer, Egbert Kronik, Leeor J Chem Theory Comput [Image: see text] Density functional theory with optimally tuned range-separated hybrid (OT-RSH) functionals has been recently suggested [Refaely-Abramson et al. Phys. Rev. Lett.2012, 109, 226405] as a nonempirical approach to predict the outer-valence electronic structure of molecules with the same accuracy as many-body perturbation theory. Here, we provide a quantitative evaluation of the OT-RSH approach by examining its performance in predicting the outer-valence electron spectra of several prototypical gas-phase molecules, from aromatic rings (benzene, pyridine, and pyrimidine) to more complex organic systems (terpyrimidinethiol and copper phthalocyanine). For a range up to several electronvolts away from the frontier orbital energies, we find that the outer-valence electronic structure obtained from the OT-RSH method agrees very well (typically within ∼0.1–0.2 eV) with both experimental photoemission and theoretical many-body perturbation theory data in the GW approximation. In particular, we find that with new strategies for an optimal choice of the short-range fraction of Fock exchange, the OT-RSH approach offers a balanced description of localized and delocalized states. We discuss in detail the sole exception found—a high-symmetry orbital, particular to small aromatic rings, which is relatively deep inside the valence state manifold. Overall, the OT-RSH method is an accurate DFT-based method for outer-valence electronic structure prediction for such systems and is of essentially the same level of accuracy as contemporary GW approaches, at a reduced computational cost. American Chemical Society 2014-03-25 2014-05-13 /pmc/articles/PMC4020925/ /pubmed/24839410 http://dx.doi.org/10.1021/ct400956h Text en Copyright © 2014 American Chemical Society Terms of Use CC-BY (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html)
spellingShingle Egger, David A.
Weissman, Shira
Refaely-Abramson, Sivan
Sharifzadeh, Sahar
Dauth, Matthias
Baer, Roi
Kümmel, Stephan
Neaton, Jeffrey B.
Zojer, Egbert
Kronik, Leeor
Outer-valence Electron Spectra of Prototypical Aromatic Heterocycles from an Optimally Tuned Range-Separated Hybrid Functional
title Outer-valence Electron Spectra of Prototypical Aromatic Heterocycles from an Optimally Tuned Range-Separated Hybrid Functional
title_full Outer-valence Electron Spectra of Prototypical Aromatic Heterocycles from an Optimally Tuned Range-Separated Hybrid Functional
title_fullStr Outer-valence Electron Spectra of Prototypical Aromatic Heterocycles from an Optimally Tuned Range-Separated Hybrid Functional
title_full_unstemmed Outer-valence Electron Spectra of Prototypical Aromatic Heterocycles from an Optimally Tuned Range-Separated Hybrid Functional
title_short Outer-valence Electron Spectra of Prototypical Aromatic Heterocycles from an Optimally Tuned Range-Separated Hybrid Functional
title_sort outer-valence electron spectra of prototypical aromatic heterocycles from an optimally tuned range-separated hybrid functional
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4020925/
https://www.ncbi.nlm.nih.gov/pubmed/24839410
http://dx.doi.org/10.1021/ct400956h
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