TY - JOUR
T1 - Density functional theory study on the dihydrogen bond cooperativity in the growth behavior of dimethyl sulfoxide clusters
AU - Venkataramanan, Natarajan Sathiyamoorthy
AU - Suvitha, Ambigapathy
AU - Kawazoe, Yoshiyuki
N1 - Funding Information:
NSV thanks the DST for a partial support though project ( SB/S1/PC-047/2013 ). We acknowledge the Center for Computational Materials Science at the Institute for Materials Research for use of the Hitachi SR16000 (model M1) supercomputer system.
Publisher Copyright:
© 2017 Elsevier B.V.
PY - 2018/1
Y1 - 2018/1
N2 - We have carried out a density functional theory study on the structures of DMSO clusters and analysed the structure and their stability using molecular electrostatic potential and quantum theory of atoms-in-molecules (QTAIM). The ground state geometry of the DMSO clusters, prefer to exist in ouroboros shape. Pair wise interaction energy calculation show the interaction between methyl groups of adjacent DMSO molecules and destabilization is created by the methyl groups which are away from each other. Molecular electrostatic potential analysis shows the existence of σ-hole on the odd numbered clusters, which helps in their highly directional growth. QTAIM analysis show the existence of two intermolecular hydrogen bonds, of type S[sbnd]O ⋯ H[sbnd]C hydrogen bonds and methyl C[sbnd]H ⋯ H[sbnd]C dihydrogen bonds. The computed ρ and Laplacian values were all positive for the intermolecular bonds, supporting the existence of noncovalent interactions. The computed ellipticity for the dihydrogen bonds have values > 2, which confirms the delocalization of electron, are mainly due to the hydrogen-hydrogen interactions of methyl groups. A plot of total hydrogen bonding energy vs the observed total local electron density shows linearity with correlation coefficient of near unity, which indicates the cooperative effects of intermolecular dihydrogen H·H bonds.
AB - We have carried out a density functional theory study on the structures of DMSO clusters and analysed the structure and their stability using molecular electrostatic potential and quantum theory of atoms-in-molecules (QTAIM). The ground state geometry of the DMSO clusters, prefer to exist in ouroboros shape. Pair wise interaction energy calculation show the interaction between methyl groups of adjacent DMSO molecules and destabilization is created by the methyl groups which are away from each other. Molecular electrostatic potential analysis shows the existence of σ-hole on the odd numbered clusters, which helps in their highly directional growth. QTAIM analysis show the existence of two intermolecular hydrogen bonds, of type S[sbnd]O ⋯ H[sbnd]C hydrogen bonds and methyl C[sbnd]H ⋯ H[sbnd]C dihydrogen bonds. The computed ρ and Laplacian values were all positive for the intermolecular bonds, supporting the existence of noncovalent interactions. The computed ellipticity for the dihydrogen bonds have values > 2, which confirms the delocalization of electron, are mainly due to the hydrogen-hydrogen interactions of methyl groups. A plot of total hydrogen bonding energy vs the observed total local electron density shows linearity with correlation coefficient of near unity, which indicates the cooperative effects of intermolecular dihydrogen H·H bonds.
KW - AIM
KW - Cooperativity
KW - DFT
KW - DMSO
KW - Solvents
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U2 - 10.1016/j.molliq.2017.11.062
DO - 10.1016/j.molliq.2017.11.062
M3 - Article
AN - SCOPUS:85034034328
SN - 0167-7322
VL - 249
SP - 454
EP - 462
JO - Journal of Molecular Liquids
JF - Journal of Molecular Liquids
ER -