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Ab initio study on the excited states of pyrene and its derivatives using multi-reference perturbation theory methods

Low-lying singlet excited states of pyrene derivatives originated from the (1)L(a) and (1)L(b) states of pyrene have decisive influences on their absorption and fluorescence emission behaviors. Calculation of these excited states with quantitative accuracy is required for the theoretical design of p...

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Autores principales: Shirai, Soichi, Inagaki, Shinji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9051409/
https://www.ncbi.nlm.nih.gov/pubmed/35492109
http://dx.doi.org/10.1039/c9ra10483f
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author Shirai, Soichi
Inagaki, Shinji
author_facet Shirai, Soichi
Inagaki, Shinji
author_sort Shirai, Soichi
collection PubMed
description Low-lying singlet excited states of pyrene derivatives originated from the (1)L(a) and (1)L(b) states of pyrene have decisive influences on their absorption and fluorescence emission behaviors. Calculation of these excited states with quantitative accuracy is required for the theoretical design of pyrene derivatives tailored to target applications; this has been a long-standing challenge for ab initio quantum chemical calculations. In this study, we explore an adequate computational scheme through calculations of pyrene and its phenyl-substituted derivatives using multi-reference perturbation theory (MRPT) methods. All valence π orbitals on the pyrene moiety were assigned to the active orbitals. Computational load was reduced by restricting the electron excitations within the active orbitals in the preparation of reference configuration space. A generalized multi-configuration quasi-degenerate perturbation theory (GMCQDPT) was adopted to treat the reference space other than the complete active space. The calculated (1)L(a) and (1)L(b) excitation energies of pyrene are in good agreement with the experimental values. Calculations of 1,3,6,8-tetraphenyl pyrene suggest that the energetic ordering of (1)L(a) and (1)L(b) is inverted through tetraphenyl substitution and its lowest singlet excited state is the (1)L(a) parentage of pyrene, which is consistent with the experimentally deduced scheme. These results are not readily obtained by MRPT calculations with a limited number of active orbitals and single-reference theory calculations. Diphenyl pyrenes (DPPy) were also calculated at the same level of theory to investigate the dependence on the substitution positions of phenyl groups.
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spelling pubmed-90514092022-04-29 Ab initio study on the excited states of pyrene and its derivatives using multi-reference perturbation theory methods Shirai, Soichi Inagaki, Shinji RSC Adv Chemistry Low-lying singlet excited states of pyrene derivatives originated from the (1)L(a) and (1)L(b) states of pyrene have decisive influences on their absorption and fluorescence emission behaviors. Calculation of these excited states with quantitative accuracy is required for the theoretical design of pyrene derivatives tailored to target applications; this has been a long-standing challenge for ab initio quantum chemical calculations. In this study, we explore an adequate computational scheme through calculations of pyrene and its phenyl-substituted derivatives using multi-reference perturbation theory (MRPT) methods. All valence π orbitals on the pyrene moiety were assigned to the active orbitals. Computational load was reduced by restricting the electron excitations within the active orbitals in the preparation of reference configuration space. A generalized multi-configuration quasi-degenerate perturbation theory (GMCQDPT) was adopted to treat the reference space other than the complete active space. The calculated (1)L(a) and (1)L(b) excitation energies of pyrene are in good agreement with the experimental values. Calculations of 1,3,6,8-tetraphenyl pyrene suggest that the energetic ordering of (1)L(a) and (1)L(b) is inverted through tetraphenyl substitution and its lowest singlet excited state is the (1)L(a) parentage of pyrene, which is consistent with the experimentally deduced scheme. These results are not readily obtained by MRPT calculations with a limited number of active orbitals and single-reference theory calculations. Diphenyl pyrenes (DPPy) were also calculated at the same level of theory to investigate the dependence on the substitution positions of phenyl groups. The Royal Society of Chemistry 2020-03-31 /pmc/articles/PMC9051409/ /pubmed/35492109 http://dx.doi.org/10.1039/c9ra10483f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Shirai, Soichi
Inagaki, Shinji
Ab initio study on the excited states of pyrene and its derivatives using multi-reference perturbation theory methods
title Ab initio study on the excited states of pyrene and its derivatives using multi-reference perturbation theory methods
title_full Ab initio study on the excited states of pyrene and its derivatives using multi-reference perturbation theory methods
title_fullStr Ab initio study on the excited states of pyrene and its derivatives using multi-reference perturbation theory methods
title_full_unstemmed Ab initio study on the excited states of pyrene and its derivatives using multi-reference perturbation theory methods
title_short Ab initio study on the excited states of pyrene and its derivatives using multi-reference perturbation theory methods
title_sort ab initio study on the excited states of pyrene and its derivatives using multi-reference perturbation theory methods
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9051409/
https://www.ncbi.nlm.nih.gov/pubmed/35492109
http://dx.doi.org/10.1039/c9ra10483f
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AT inagakishinji abinitiostudyontheexcitedstatesofpyreneanditsderivativesusingmultireferenceperturbationtheorymethods