volume 119 issue 9 pages 1657-1665

Electron Diffraction Analysis for the Molecules with Multiple Large-Amplitude Motions. 3-Nitrostyrene—A Molecule with Two Internal Rotors

Publication typeJournal Article
Publication date2015-02-17
scimago Q2
wos Q2
SJR0.634
CiteScore4.8
Impact factor2.8
ISSN10895639, 15205215
PubMed ID:  25633645
Physical and Theoretical Chemistry
Abstract
Dynamic structural analysis of the molecules possessing large-amplitude degrees of freedom has been attempted by many researchers; however, so far, electron diffraction investigations involved only one large-amplitude coordinate (internal rotation or bending). The current state of computational facilities allows extending of the general dynamic approach to the systems possessing two or more large-amplitude motions. This paper presents the first practical implementation of the theoretical method developed previously by the authors for solving the dynamic-structural problem with two or more large-amplitude coordinates; the procedure is applied to a molecule of 3-nitrostyrene. The molecule is represented as a set of pseudoconformers built on a two-dimensional grid corresponding to both internal rotation coordinates present in the molecule (with 10-30° steps by each angle); altogether, up to 342 pseudoconformers were used. Structural analysis was based on the experimental electron diffraction data supported by quantum chemical calculations (at the MP2 and B3LYP levels of theory) and molecular spectroscopy data. Quantum chemistry predicts the planar structure of both syn- and anti- stable conformations with close energies and weak interaction between internal rotations of nitro and vinyl groups. The gas-phase electron diffraction experimental data are compatible with the quantum chemical predictions. The principal equilibrium geometry parameters of the molecule (syn- conformation) have been determined as follows: r(e)(C-C)(ring, avg.) = 1.391(1) Å, r(e)(C-C) = 1.477(5) Å, r(e)(C═C) = 1.333(7) Å, r(e)(C-N) = 1.463(5) Å, r(e)(N═O) = 1.227(3) Å, ∠e(O═N═O) = 124.3 (4)°. Experimental data for this molecule are insufficient to make estimates of the barrier heights of internal rotation; the population ratio of syn- and anti- conformations is evaluated as 50 ± 20%. Results of our investigation confirm the presence of significant internal rotations in the 3-nitrostyrene molecule.
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Kovtun D. M. et al. Electron Diffraction Analysis for the Molecules with Multiple Large-Amplitude Motions. 3-Nitrostyrene—A Molecule with Two Internal Rotors // Journal of Physical Chemistry A. 2015. Vol. 119. No. 9. pp. 1657-1665.
GOST all authors (up to 50) Copy
Kovtun D. M., Лагутин Ю. С., Tarasov Y. V. Electron Diffraction Analysis for the Molecules with Multiple Large-Amplitude Motions. 3-Nitrostyrene—A Molecule with Two Internal Rotors // Journal of Physical Chemistry A. 2015. Vol. 119. No. 9. pp. 1657-1665.
RIS |
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RIS Copy
TY - JOUR
DO - 10.1021/jp5082774
UR - https://doi.org/10.1021/jp5082774
TI - Electron Diffraction Analysis for the Molecules with Multiple Large-Amplitude Motions. 3-Nitrostyrene—A Molecule with Two Internal Rotors
T2 - Journal of Physical Chemistry A
AU - Kovtun, Dmitry M
AU - Лагутин, Ю. С.
AU - Tarasov, Yury V.
PY - 2015
DA - 2015/02/17
PB - American Chemical Society (ACS)
SP - 1657-1665
IS - 9
VL - 119
PMID - 25633645
SN - 1089-5639
SN - 1520-5215
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2015_Kovtun,
author = {Dmitry M Kovtun and Ю. С. Лагутин and Yury V. Tarasov},
title = {Electron Diffraction Analysis for the Molecules with Multiple Large-Amplitude Motions. 3-Nitrostyrene—A Molecule with Two Internal Rotors},
journal = {Journal of Physical Chemistry A},
year = {2015},
volume = {119},
publisher = {American Chemical Society (ACS)},
month = {feb},
url = {https://doi.org/10.1021/jp5082774},
number = {9},
pages = {1657--1665},
doi = {10.1021/jp5082774}
}
MLA
Cite this
MLA Copy
Kovtun, Dmitry M., et al. “Electron Diffraction Analysis for the Molecules with Multiple Large-Amplitude Motions. 3-Nitrostyrene—A Molecule with Two Internal Rotors.” Journal of Physical Chemistry A, vol. 119, no. 9, Feb. 2015, pp. 1657-1665. https://doi.org/10.1021/jp5082774.