Molecular orbital studies (hardness, chemical potential, electrophilicity, and first electron excitation), vibrational investigation and theoretical NBO analysis of 2-hydroxy-5-bromobenzaldehyde by density functional method
1
PG and Research Department of Physics, Thanthai Hans Roever College, Perambalur 621 212, India
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2
PG and Research Department of Physics, A.A. Govt. Arts College, Musiri, Tiruchirapalli 621 211, India
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3
Department of Physics, Vivekanandha College for Women, Tiruchengode 637 205, India
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Publication type: Journal Article
Publication date: 2013-01-01
scimago Q2
wos Q2
SJR: 0.628
CiteScore: 8.0
Impact factor: 4.7
ISSN: 00222860, 18728014
Organic Chemistry
Inorganic Chemistry
Spectroscopy
Analytical Chemistry
Abstract
In this work, the vibrational spectral analysis was carried out using Raman and infrared spectroscopy in the range 4000–400 cm −1 and 3500–100 cm −1 , respectively, for the 2-hydroxy-5-bromobenzaldehyde (HBB). The experimental spectra were recorded in the solid phase. The fundamental vibrational frequencies and intensity of vibrational bands were evaluated using density functional theory (DFT) with the standard B3LYP/6-311G++(d,p) method and basis set. Normal co-ordinate calculations were performed with the DFT force field corrected by a recommended set of scaling factors yielding fairly good agreement between observed and calculated frequencies. Simulation of infrared and Raman spectra utilizing the results of these calculations led to excellent overall agreement with the observed spectral patterns. The complete assignments were performed on the basis of the potential energy distribution (PED) of the vibrational modes, calculated with scaled quantum mechanics (SQM) method. The optimized geometric parameters (bond lengths and bond angles) were compared with experimental values of related compound. The stability of the molecule arising from hyper conjugative interactions and the charge delocalization has been analyzed using natural bond orbital (NBO) analysis. The directly calculated ionization potential (IP), electron affinity (EA), electronegativity ( χ ), electrophilicity index ( ω ), hardness ( η ), chemical potential ( μ ), and first electron excitation ( τ ) are all correlated with the HOMO and LUMO energies with their molecular properties. These show that charge transfer occurs within the molecule. Furthermore, molecular electrostatic potential maps (MESP) of the molecule have been calculated.
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Nataraj A., Balachandran V., Thangavel K. Molecular orbital studies (hardness, chemical potential, electrophilicity, and first electron excitation), vibrational investigation and theoretical NBO analysis of 2-hydroxy-5-bromobenzaldehyde by density functional method // Journal of Molecular Structure. 2013. Vol. 1031. pp. 221-233.
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Nataraj A., Balachandran V., Thangavel K. Molecular orbital studies (hardness, chemical potential, electrophilicity, and first electron excitation), vibrational investigation and theoretical NBO analysis of 2-hydroxy-5-bromobenzaldehyde by density functional method // Journal of Molecular Structure. 2013. Vol. 1031. pp. 221-233.
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TY - JOUR
DO - 10.1016/j.molstruc.2012.09.047
UR - https://doi.org/10.1016/j.molstruc.2012.09.047
TI - Molecular orbital studies (hardness, chemical potential, electrophilicity, and first electron excitation), vibrational investigation and theoretical NBO analysis of 2-hydroxy-5-bromobenzaldehyde by density functional method
T2 - Journal of Molecular Structure
AU - Nataraj, A.
AU - Balachandran, V.
AU - Thangavel, Karthick
PY - 2013
DA - 2013/01/01
PB - Elsevier
SP - 221-233
VL - 1031
SN - 0022-2860
SN - 1872-8014
ER -
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@article{2013_Nataraj,
author = {A. Nataraj and V. Balachandran and Karthick Thangavel},
title = {Molecular orbital studies (hardness, chemical potential, electrophilicity, and first electron excitation), vibrational investigation and theoretical NBO analysis of 2-hydroxy-5-bromobenzaldehyde by density functional method},
journal = {Journal of Molecular Structure},
year = {2013},
volume = {1031},
publisher = {Elsevier},
month = {jan},
url = {https://doi.org/10.1016/j.molstruc.2012.09.047},
pages = {221--233},
doi = {10.1016/j.molstruc.2012.09.047}
}