Understanding the decomposition reaction mechanism of chrysanthemic acid: a computational study
<p>Abstract</p> <p>Background</p> <p>Chrysanthemic acid (<b>CHA</b>) is a major product from the photodecomposition of pyrethrin which is an important class of pesticide compounds.</p> <p>In the following paper, Hybrid density functional theory (...
Main Authors: | , |
---|---|
Format: | Article |
Language: | English |
Published: |
BMC
2011-10-01
|
Series: | Chemistry Central Journal |
Online Access: | http://journal.chemistrycentral.com/content/5/1/66 |
id |
doaj-9d2f144bed534414ae3f896e5a8e8b7d |
---|---|
record_format |
Article |
spelling |
doaj-9d2f144bed534414ae3f896e5a8e8b7d2021-08-02T04:47:35ZengBMCChemistry Central Journal1752-153X2011-10-01516610.1186/1752-153X-5-66Understanding the decomposition reaction mechanism of chrysanthemic acid: a computational studyElroby Shabaan AKAziz Saadullah G<p>Abstract</p> <p>Background</p> <p>Chrysanthemic acid (<b>CHA</b>) is a major product from the photodecomposition of pyrethrin which is an important class of pesticide compounds.</p> <p>In the following paper, Hybrid density functional theory (DFT) calculations of the potential energy surface (PES) for three possible channels decomposition of chrysanthemic acid <b>(</b>cis-trans isomerization, rearrangement and fragmentation) have been carried at the B3LYP/6-311+G** level of theory. DFT was employed to optimize the geometry parameters of the reactants, transition states, intermediates and products based on detailed potential energy surfaces (PES).</p> <p>Results</p> <p>Our results suggest that all three pathways of <b>CHA </b>are endothermic. DFT calculations revealed that the activation barriers for cis-trans isomerization are low, leading to a thermodynamically favorable process than other two pathways. We also investigated the solvent effect on the PES using the polarizable continuum model (PCM). In addition, time-dependent density functional theory (TDDFT) calculations showed that these reactions occur in the ground state rather than in an excited state.</p> <p>Conclusion</p> <p>The rearrangement process seems to be more favorable than the decomposition of <b>CHA </b>to carbene formation. The solvent effect calculations indicated no changes in the shape of the PES with three continua (water, ethanol and cyclohexane), although the solvents tend to stabilize all of the species.</p> http://journal.chemistrycentral.com/content/5/1/66 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Elroby Shabaan AK Aziz Saadullah G |
spellingShingle |
Elroby Shabaan AK Aziz Saadullah G Understanding the decomposition reaction mechanism of chrysanthemic acid: a computational study Chemistry Central Journal |
author_facet |
Elroby Shabaan AK Aziz Saadullah G |
author_sort |
Elroby Shabaan AK |
title |
Understanding the decomposition reaction mechanism of chrysanthemic acid: a computational study |
title_short |
Understanding the decomposition reaction mechanism of chrysanthemic acid: a computational study |
title_full |
Understanding the decomposition reaction mechanism of chrysanthemic acid: a computational study |
title_fullStr |
Understanding the decomposition reaction mechanism of chrysanthemic acid: a computational study |
title_full_unstemmed |
Understanding the decomposition reaction mechanism of chrysanthemic acid: a computational study |
title_sort |
understanding the decomposition reaction mechanism of chrysanthemic acid: a computational study |
publisher |
BMC |
series |
Chemistry Central Journal |
issn |
1752-153X |
publishDate |
2011-10-01 |
description |
<p>Abstract</p> <p>Background</p> <p>Chrysanthemic acid (<b>CHA</b>) is a major product from the photodecomposition of pyrethrin which is an important class of pesticide compounds.</p> <p>In the following paper, Hybrid density functional theory (DFT) calculations of the potential energy surface (PES) for three possible channels decomposition of chrysanthemic acid <b>(</b>cis-trans isomerization, rearrangement and fragmentation) have been carried at the B3LYP/6-311+G** level of theory. DFT was employed to optimize the geometry parameters of the reactants, transition states, intermediates and products based on detailed potential energy surfaces (PES).</p> <p>Results</p> <p>Our results suggest that all three pathways of <b>CHA </b>are endothermic. DFT calculations revealed that the activation barriers for cis-trans isomerization are low, leading to a thermodynamically favorable process than other two pathways. We also investigated the solvent effect on the PES using the polarizable continuum model (PCM). In addition, time-dependent density functional theory (TDDFT) calculations showed that these reactions occur in the ground state rather than in an excited state.</p> <p>Conclusion</p> <p>The rearrangement process seems to be more favorable than the decomposition of <b>CHA </b>to carbene formation. The solvent effect calculations indicated no changes in the shape of the PES with three continua (water, ethanol and cyclohexane), although the solvents tend to stabilize all of the species.</p> |
url |
http://journal.chemistrycentral.com/content/5/1/66 |
work_keys_str_mv |
AT elrobyshabaanak understandingthedecompositionreactionmechanismofchrysanthemicacidacomputationalstudy AT azizsaadullahg understandingthedecompositionreactionmechanismofchrysanthemicacidacomputationalstudy |
_version_ |
1721241957619990528 |