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UV-Photoelectron Spectroscopy of BN Indoles: Experimental and Computational Electronic Structure Analysis
[Image: see text] We present a comprehensive electronic structure analysis of two BN isosteres of indole using a combined UV-photoelectron spectroscopy (UV-PES)/computational chemistry approach. Gas-phase He I photoelectron spectra of external BN indole I and fused BN indole II have been recorded, a...
Autores principales: | , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical
Society
2014
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4140474/ https://www.ncbi.nlm.nih.gov/pubmed/25089659 http://dx.doi.org/10.1021/ja5063899 |
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author | Chrostowska, Anna Xu, Senmiao Mazière, Audrey Boknevitz, Katherine Li, Bo Abbey, Eric R. Dargelos, Alain Graciaa, Alain Liu, Shih-Yuan |
author_facet | Chrostowska, Anna Xu, Senmiao Mazière, Audrey Boknevitz, Katherine Li, Bo Abbey, Eric R. Dargelos, Alain Graciaa, Alain Liu, Shih-Yuan |
author_sort | Chrostowska, Anna |
collection | PubMed |
description | [Image: see text] We present a comprehensive electronic structure analysis of two BN isosteres of indole using a combined UV-photoelectron spectroscopy (UV-PES)/computational chemistry approach. Gas-phase He I photoelectron spectra of external BN indole I and fused BN indole II have been recorded, assessed by density functional theory calculations, and compared with natural indole. The first ionization energies of these indoles are natural indole (7.9 eV), external BN indole I (7.9 eV), and fused BN indole II (8.05 eV). The computationally determined molecular dipole moments are in the order: natural indole (2.177 D) > fused BN indole II (1.512 D) > external BN indole I (0.543 D). The λ(max) in the UV–vis absorption spectra are in the order: fused BN indole II (292 nm) > external BN indole I (282 nm) > natural indole (270 nm). The observed relative electrophilic aromatic substitution reactivity of the investigated indoles with dimethyliminium chloride as the electrophile is as follows: fused BN indole II > natural indole > external BN indole I, and this trend correlates with the π-orbital coefficient at the 3-position. Nucleus-independent chemical shifts calculations show that the introduction of boron into an aromatic 6π-electron system leads to a reduction in aromaticity, presumably due to a stronger bond localization. Trends and conclusions from BN isosteres of simple monocyclic aromatic systems such as benzene and toluene are not necessarily translated to the bicyclic indole core. Thus, electronic structure consequences resulting from BN/CC isosterism will need to be evaluated individually from system to system. |
format | Online Article Text |
id | pubmed-4140474 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | American Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-41404742015-08-04 UV-Photoelectron Spectroscopy of BN Indoles: Experimental and Computational Electronic Structure Analysis Chrostowska, Anna Xu, Senmiao Mazière, Audrey Boknevitz, Katherine Li, Bo Abbey, Eric R. Dargelos, Alain Graciaa, Alain Liu, Shih-Yuan J Am Chem Soc [Image: see text] We present a comprehensive electronic structure analysis of two BN isosteres of indole using a combined UV-photoelectron spectroscopy (UV-PES)/computational chemistry approach. Gas-phase He I photoelectron spectra of external BN indole I and fused BN indole II have been recorded, assessed by density functional theory calculations, and compared with natural indole. The first ionization energies of these indoles are natural indole (7.9 eV), external BN indole I (7.9 eV), and fused BN indole II (8.05 eV). The computationally determined molecular dipole moments are in the order: natural indole (2.177 D) > fused BN indole II (1.512 D) > external BN indole I (0.543 D). The λ(max) in the UV–vis absorption spectra are in the order: fused BN indole II (292 nm) > external BN indole I (282 nm) > natural indole (270 nm). The observed relative electrophilic aromatic substitution reactivity of the investigated indoles with dimethyliminium chloride as the electrophile is as follows: fused BN indole II > natural indole > external BN indole I, and this trend correlates with the π-orbital coefficient at the 3-position. Nucleus-independent chemical shifts calculations show that the introduction of boron into an aromatic 6π-electron system leads to a reduction in aromaticity, presumably due to a stronger bond localization. Trends and conclusions from BN isosteres of simple monocyclic aromatic systems such as benzene and toluene are not necessarily translated to the bicyclic indole core. Thus, electronic structure consequences resulting from BN/CC isosterism will need to be evaluated individually from system to system. American Chemical Society 2014-08-04 2014-08-20 /pmc/articles/PMC4140474/ /pubmed/25089659 http://dx.doi.org/10.1021/ja5063899 Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) |
spellingShingle | Chrostowska, Anna Xu, Senmiao Mazière, Audrey Boknevitz, Katherine Li, Bo Abbey, Eric R. Dargelos, Alain Graciaa, Alain Liu, Shih-Yuan UV-Photoelectron Spectroscopy of BN Indoles: Experimental and Computational Electronic Structure Analysis |
title | UV-Photoelectron
Spectroscopy of BN Indoles: Experimental
and Computational Electronic Structure Analysis |
title_full | UV-Photoelectron
Spectroscopy of BN Indoles: Experimental
and Computational Electronic Structure Analysis |
title_fullStr | UV-Photoelectron
Spectroscopy of BN Indoles: Experimental
and Computational Electronic Structure Analysis |
title_full_unstemmed | UV-Photoelectron
Spectroscopy of BN Indoles: Experimental
and Computational Electronic Structure Analysis |
title_short | UV-Photoelectron
Spectroscopy of BN Indoles: Experimental
and Computational Electronic Structure Analysis |
title_sort | uv-photoelectron
spectroscopy of bn indoles: experimental
and computational electronic structure analysis |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4140474/ https://www.ncbi.nlm.nih.gov/pubmed/25089659 http://dx.doi.org/10.1021/ja5063899 |
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