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Identifying the first folded alkylbenzene via ultraviolet, infrared, and Raman spectroscopy of pentylbenzene through decylbenzene

The conformational preferences of pentyl- through decylbenzene are studied under jet-cooled conditions in the gas phase. Laser-induced fluorescence excitation spectra, fluorescence-dip infrared spectra in the alkyl CH stretch region, and Raman spectra are combined to provide assignments for the obse...

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Autores principales: Hewett, Daniel M., Bocklitz, Sebastian, Tabor, Daniel P., Sibert III, Edwin L., Suhm, Martin A., Zwier, Timothy S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6223349/
https://www.ncbi.nlm.nih.gov/pubmed/30510673
http://dx.doi.org/10.1039/c7sc02027a
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author Hewett, Daniel M.
Bocklitz, Sebastian
Tabor, Daniel P.
Sibert III, Edwin L.
Suhm, Martin A.
Zwier, Timothy S.
author_facet Hewett, Daniel M.
Bocklitz, Sebastian
Tabor, Daniel P.
Sibert III, Edwin L.
Suhm, Martin A.
Zwier, Timothy S.
author_sort Hewett, Daniel M.
collection PubMed
description The conformational preferences of pentyl- through decylbenzene are studied under jet-cooled conditions in the gas phase. Laser-induced fluorescence excitation spectra, fluorescence-dip infrared spectra in the alkyl CH stretch region, and Raman spectra are combined to provide assignments for the observed conformers. Density functional theory calculations at the B3LYP-D3BJ/def2TZVP level of theory provide relative energies and normal mode vibrations that serve as inputs for an anharmonic local mode theory introduced in earlier work on alkylbenzenes with n = 2–4. This model explicitly includes anharmonic mixing of the CH stretch modes with the overtones of scissors/bend modes of the CH(2) and CH(3) groups in the alkyl chain, and is used to assign and interpret the single-conformation IR spectra. In octylbenzene, a pair of LIF transitions shifted –92 and –78 cm(–1) from the all-trans electronic origin have unique alkyl CH stretch transitions that are fit by the local model to a g1g3g4 conformation in which the alkyl chain folds back over the aromatic ring π cloud. Its calculated energy is only 1.0 kJ mol(–1) above the all-trans global minimum. This fold is at an alkyl chain length less than half that of the pure alkanes (n = 18), consistent with a smaller energy cost for the g1 dihedral and the increased dispersive interaction of the chain with the π cloud. Local site frequencies for the entire set of conformers from the local mode model show ‘edge effects’ that raise the site frequencies of CH(2)(1) and CH(2)(2) due to the phenyl ring and CH(2)(n – 1) due to the methyl group. The g1g3g4 conformer also shows local sites shifted up in frequency at CH(2)(3) and CH(2)(6) due to interaction with the π cloud.
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spelling pubmed-62233492018-12-03 Identifying the first folded alkylbenzene via ultraviolet, infrared, and Raman spectroscopy of pentylbenzene through decylbenzene Hewett, Daniel M. Bocklitz, Sebastian Tabor, Daniel P. Sibert III, Edwin L. Suhm, Martin A. Zwier, Timothy S. Chem Sci Chemistry The conformational preferences of pentyl- through decylbenzene are studied under jet-cooled conditions in the gas phase. Laser-induced fluorescence excitation spectra, fluorescence-dip infrared spectra in the alkyl CH stretch region, and Raman spectra are combined to provide assignments for the observed conformers. Density functional theory calculations at the B3LYP-D3BJ/def2TZVP level of theory provide relative energies and normal mode vibrations that serve as inputs for an anharmonic local mode theory introduced in earlier work on alkylbenzenes with n = 2–4. This model explicitly includes anharmonic mixing of the CH stretch modes with the overtones of scissors/bend modes of the CH(2) and CH(3) groups in the alkyl chain, and is used to assign and interpret the single-conformation IR spectra. In octylbenzene, a pair of LIF transitions shifted –92 and –78 cm(–1) from the all-trans electronic origin have unique alkyl CH stretch transitions that are fit by the local model to a g1g3g4 conformation in which the alkyl chain folds back over the aromatic ring π cloud. Its calculated energy is only 1.0 kJ mol(–1) above the all-trans global minimum. This fold is at an alkyl chain length less than half that of the pure alkanes (n = 18), consistent with a smaller energy cost for the g1 dihedral and the increased dispersive interaction of the chain with the π cloud. Local site frequencies for the entire set of conformers from the local mode model show ‘edge effects’ that raise the site frequencies of CH(2)(1) and CH(2)(2) due to the phenyl ring and CH(2)(n – 1) due to the methyl group. The g1g3g4 conformer also shows local sites shifted up in frequency at CH(2)(3) and CH(2)(6) due to interaction with the π cloud. Royal Society of Chemistry 2017-08-01 2017-05-23 /pmc/articles/PMC6223349/ /pubmed/30510673 http://dx.doi.org/10.1039/c7sc02027a Text en This journal is © The Royal Society of Chemistry 2017 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Hewett, Daniel M.
Bocklitz, Sebastian
Tabor, Daniel P.
Sibert III, Edwin L.
Suhm, Martin A.
Zwier, Timothy S.
Identifying the first folded alkylbenzene via ultraviolet, infrared, and Raman spectroscopy of pentylbenzene through decylbenzene
title Identifying the first folded alkylbenzene via ultraviolet, infrared, and Raman spectroscopy of pentylbenzene through decylbenzene
title_full Identifying the first folded alkylbenzene via ultraviolet, infrared, and Raman spectroscopy of pentylbenzene through decylbenzene
title_fullStr Identifying the first folded alkylbenzene via ultraviolet, infrared, and Raman spectroscopy of pentylbenzene through decylbenzene
title_full_unstemmed Identifying the first folded alkylbenzene via ultraviolet, infrared, and Raman spectroscopy of pentylbenzene through decylbenzene
title_short Identifying the first folded alkylbenzene via ultraviolet, infrared, and Raman spectroscopy of pentylbenzene through decylbenzene
title_sort identifying the first folded alkylbenzene via ultraviolet, infrared, and raman spectroscopy of pentylbenzene through decylbenzene
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6223349/
https://www.ncbi.nlm.nih.gov/pubmed/30510673
http://dx.doi.org/10.1039/c7sc02027a
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