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Excited States of Bromopyrimidines Probed by VUV Photoabsorption Spectroscopy and Theoretical Calculations

We report absolute photoabsorption cross sections for gas-phase 2- and 5-bromopyrimidine in the 3.7–10.8 eV energy range, in a joint theoretical and experimental study. The measurements were carried out using high-resolution vacuum ultraviolet synchrotron radiation, with quantum chemical calculation...

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Autores principales: Mendes, Mónica, Kossoski, Fábris, Lozano, Ana I., Pereira-da-Silva, João, Rodrigues, Rodrigo, Ameixa, João, Jones, Nykola C., Hoffmann, Søren V., Ferreira da Silva, Filipe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8235550/
https://www.ncbi.nlm.nih.gov/pubmed/34208711
http://dx.doi.org/10.3390/ijms22126460
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author Mendes, Mónica
Kossoski, Fábris
Lozano, Ana I.
Pereira-da-Silva, João
Rodrigues, Rodrigo
Ameixa, João
Jones, Nykola C.
Hoffmann, Søren V.
Ferreira da Silva, Filipe
author_facet Mendes, Mónica
Kossoski, Fábris
Lozano, Ana I.
Pereira-da-Silva, João
Rodrigues, Rodrigo
Ameixa, João
Jones, Nykola C.
Hoffmann, Søren V.
Ferreira da Silva, Filipe
author_sort Mendes, Mónica
collection PubMed
description We report absolute photoabsorption cross sections for gas-phase 2- and 5-bromopyrimidine in the 3.7–10.8 eV energy range, in a joint theoretical and experimental study. The measurements were carried out using high-resolution vacuum ultraviolet synchrotron radiation, with quantum chemical calculations performed through the nuclear ensemble approach in combination with time-dependent density functional theory, along with additional Franck–Condon Herzberg–Teller calculations for the first absorption band (3.7–4.6 eV). The cross sections of both bromopyrimidines are very similar below 7.3 eV, deviating more substantially from each other at higher energies. In the 7.3–9.0 eV range where the maximum cross-section is found, a single and broad band is observed for 5-bromopyrimidine, while more discernible features appear in the case of 2-bromopyrimidine. Several π* ← π transitions account for the most intense bands, while weaker ones are assigned to transitions involving the nitrogen and bromine lone pairs, the antibonding σ*(Br) orbital, and the lower-lying Rydberg states. A detailed comparison with the available photo-absorption data of bromobenzene is also reported. We have found significant differences regarding the main absorption band, which is more peaked in bromobenzene, becoming broader and shifting to higher energies in both bromopyrimidines. In addition, there is a significant suppression of vibrational structures and of Rydberg states in the pair of isomers, most noticeably for 2-bromopyrimidine.
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spelling pubmed-82355502021-06-27 Excited States of Bromopyrimidines Probed by VUV Photoabsorption Spectroscopy and Theoretical Calculations Mendes, Mónica Kossoski, Fábris Lozano, Ana I. Pereira-da-Silva, João Rodrigues, Rodrigo Ameixa, João Jones, Nykola C. Hoffmann, Søren V. Ferreira da Silva, Filipe Int J Mol Sci Article We report absolute photoabsorption cross sections for gas-phase 2- and 5-bromopyrimidine in the 3.7–10.8 eV energy range, in a joint theoretical and experimental study. The measurements were carried out using high-resolution vacuum ultraviolet synchrotron radiation, with quantum chemical calculations performed through the nuclear ensemble approach in combination with time-dependent density functional theory, along with additional Franck–Condon Herzberg–Teller calculations for the first absorption band (3.7–4.6 eV). The cross sections of both bromopyrimidines are very similar below 7.3 eV, deviating more substantially from each other at higher energies. In the 7.3–9.0 eV range where the maximum cross-section is found, a single and broad band is observed for 5-bromopyrimidine, while more discernible features appear in the case of 2-bromopyrimidine. Several π* ← π transitions account for the most intense bands, while weaker ones are assigned to transitions involving the nitrogen and bromine lone pairs, the antibonding σ*(Br) orbital, and the lower-lying Rydberg states. A detailed comparison with the available photo-absorption data of bromobenzene is also reported. We have found significant differences regarding the main absorption band, which is more peaked in bromobenzene, becoming broader and shifting to higher energies in both bromopyrimidines. In addition, there is a significant suppression of vibrational structures and of Rydberg states in the pair of isomers, most noticeably for 2-bromopyrimidine. MDPI 2021-06-16 /pmc/articles/PMC8235550/ /pubmed/34208711 http://dx.doi.org/10.3390/ijms22126460 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mendes, Mónica
Kossoski, Fábris
Lozano, Ana I.
Pereira-da-Silva, João
Rodrigues, Rodrigo
Ameixa, João
Jones, Nykola C.
Hoffmann, Søren V.
Ferreira da Silva, Filipe
Excited States of Bromopyrimidines Probed by VUV Photoabsorption Spectroscopy and Theoretical Calculations
title Excited States of Bromopyrimidines Probed by VUV Photoabsorption Spectroscopy and Theoretical Calculations
title_full Excited States of Bromopyrimidines Probed by VUV Photoabsorption Spectroscopy and Theoretical Calculations
title_fullStr Excited States of Bromopyrimidines Probed by VUV Photoabsorption Spectroscopy and Theoretical Calculations
title_full_unstemmed Excited States of Bromopyrimidines Probed by VUV Photoabsorption Spectroscopy and Theoretical Calculations
title_short Excited States of Bromopyrimidines Probed by VUV Photoabsorption Spectroscopy and Theoretical Calculations
title_sort excited states of bromopyrimidines probed by vuv photoabsorption spectroscopy and theoretical calculations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8235550/
https://www.ncbi.nlm.nih.gov/pubmed/34208711
http://dx.doi.org/10.3390/ijms22126460
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