Rr. Nazmutdinov et al., QUANTUM-CHEMICAL STUDY OF THE ADSORPTION OF AN H2O MOLECULE ON AN UNCHARGED MERCURY SURFACE, Journal of electroanalytical chemistry [1992], 369(1-2), 1994, pp. 227-231
Despite the fact that attempts were made to describe the interaction o
f a single H2O molecule with a mercury surface, using both semi-empiri
cal and ab initio quantum chemical calculations, reliable microscopic
information on the Hg\H2O interface is still lacking. In this work, no
n-empirical quantum chemical calculations were carried out to study wa
ter molecule adsorption on an uncharged mercury electrode. The mercury
surface was modelled by a cluster Hg(n), with n = 6, 7. The effect of
electronic correlation plays an important role. An ''on-top'' positio
n of the H2O molecule with the dipole moment pointing away from the su
rface reveals an adsorption energy minimum (DELTAE(ads)) of -38.5 kJ m
ol-1. The dipole reorientation energy was estimated to be 21.8 kJ mol-
1. According to our results, the dependence of DELTAE(ads) on the tilt
angle has no limit. Analysis of the chemical binding between the clus
ter and the H2O molecule shows the electrostatic nature of the binding
. The mean field approximation was applied to describe the interaction
between the adsorbed H2O molecules in a monolayer. The results were i
n agreement with experimental data.