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The Dynamical Behavior of the s-Trioxane Radical Cation—A Low-Temperature EPR and Theoretical Study

The radical cation of s-trioxane, radiolytically generated in a freon (CF(3)CCl(3)) matrix, was studied in the 10–140 K temperature region. Reversible changes of the EPR spectra were observed, arising from both ring puckering and ring inversion through the molecular plane. The ESREXN program based o...

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Autores principales: Naumov, Sergej S., Knolle, Wolfgang, Naumov, Sergej P., Pöppl, Andreas, Janovský, Igor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6271718/
https://www.ncbi.nlm.nih.gov/pubmed/25353382
http://dx.doi.org/10.3390/molecules191117305
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author Naumov, Sergej S.
Knolle, Wolfgang
Naumov, Sergej P.
Pöppl, Andreas
Janovský, Igor
author_facet Naumov, Sergej S.
Knolle, Wolfgang
Naumov, Sergej P.
Pöppl, Andreas
Janovský, Igor
author_sort Naumov, Sergej S.
collection PubMed
description The radical cation of s-trioxane, radiolytically generated in a freon (CF(3)CCl(3)) matrix, was studied in the 10–140 K temperature region. Reversible changes of the EPR spectra were observed, arising from both ring puckering and ring inversion through the molecular plane. The ESREXN program based on the Liouville density matrix equation, allowing the treatment of dynamical exchange, has been used to analyze the experimental results. Two limiting conformer structures of the s-trioxane radical cation were taken into account, namely “rigid” half-boat and averaged planar ones, differing strongly in their electron distribution. The spectrum due to the “rigid” half-boat conformer can be observed only at very low (<60 K) temperatures, when the exchange of conformers is very slow. Two transition states for interconversion by puckering and ring-inversion were identified, close in activation energy (2.3 and 3.0 kJ/mol calculated). Since the energy difference is very small, both processes set on at a comparable temperature. In the case of nearly complete equilibration (fast exchange) between six energetically equivalent structures at T > 120 K in CF(3)CCl(3), a septet due to six equivalent protons (hfs splitting constant 5.9 mT) is observed, characteristic of the dynamically averaged planar geometry of the radical cation. DFT quantum chemical calculations and spectral simulation including intramolecular dynamical exchange support the interpretation.
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spelling pubmed-62717182019-01-07 The Dynamical Behavior of the s-Trioxane Radical Cation—A Low-Temperature EPR and Theoretical Study Naumov, Sergej S. Knolle, Wolfgang Naumov, Sergej P. Pöppl, Andreas Janovský, Igor Molecules Article The radical cation of s-trioxane, radiolytically generated in a freon (CF(3)CCl(3)) matrix, was studied in the 10–140 K temperature region. Reversible changes of the EPR spectra were observed, arising from both ring puckering and ring inversion through the molecular plane. The ESREXN program based on the Liouville density matrix equation, allowing the treatment of dynamical exchange, has been used to analyze the experimental results. Two limiting conformer structures of the s-trioxane radical cation were taken into account, namely “rigid” half-boat and averaged planar ones, differing strongly in their electron distribution. The spectrum due to the “rigid” half-boat conformer can be observed only at very low (<60 K) temperatures, when the exchange of conformers is very slow. Two transition states for interconversion by puckering and ring-inversion were identified, close in activation energy (2.3 and 3.0 kJ/mol calculated). Since the energy difference is very small, both processes set on at a comparable temperature. In the case of nearly complete equilibration (fast exchange) between six energetically equivalent structures at T > 120 K in CF(3)CCl(3), a septet due to six equivalent protons (hfs splitting constant 5.9 mT) is observed, characteristic of the dynamically averaged planar geometry of the radical cation. DFT quantum chemical calculations and spectral simulation including intramolecular dynamical exchange support the interpretation. MDPI 2014-10-28 /pmc/articles/PMC6271718/ /pubmed/25353382 http://dx.doi.org/10.3390/molecules191117305 Text en © 2014 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Naumov, Sergej S.
Knolle, Wolfgang
Naumov, Sergej P.
Pöppl, Andreas
Janovský, Igor
The Dynamical Behavior of the s-Trioxane Radical Cation—A Low-Temperature EPR and Theoretical Study
title The Dynamical Behavior of the s-Trioxane Radical Cation—A Low-Temperature EPR and Theoretical Study
title_full The Dynamical Behavior of the s-Trioxane Radical Cation—A Low-Temperature EPR and Theoretical Study
title_fullStr The Dynamical Behavior of the s-Trioxane Radical Cation—A Low-Temperature EPR and Theoretical Study
title_full_unstemmed The Dynamical Behavior of the s-Trioxane Radical Cation—A Low-Temperature EPR and Theoretical Study
title_short The Dynamical Behavior of the s-Trioxane Radical Cation—A Low-Temperature EPR and Theoretical Study
title_sort dynamical behavior of the s-trioxane radical cation—a low-temperature epr and theoretical study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6271718/
https://www.ncbi.nlm.nih.gov/pubmed/25353382
http://dx.doi.org/10.3390/molecules191117305
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