Electric field effects on the adsorption, charge transfer and vibrational state at metal electrodes: A DFT study on H2O/Pt(111), (H2O)/Pt(100) and (H2O)(2)/Pt(111)

Citation
T. Ohwaki et al., Electric field effects on the adsorption, charge transfer and vibrational state at metal electrodes: A DFT study on H2O/Pt(111), (H2O)/Pt(100) and (H2O)(2)/Pt(111), B CHEM S J, 74(6), 2001, pp. 1021-1029
Citations number
31
Categorie Soggetti
Chemistry
Journal title
BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN
ISSN journal
00092673 → ACNP
Volume
74
Issue
6
Year of publication
2001
Pages
1021 - 1029
Database
ISI
SICI code
0009-2673(200106)74:6<1021:EFEOTA>2.0.ZU;2-D
Abstract
Electric field (EF) effects on an adsorbed H2O and (H2O)(2) on Pt(l Il)and (100) surfaces have been studied using density functional theory (DFT) at t he B3LYP/LanL2DZ level. For the interactions between the H2O and the Pt sur face (modeled as a cluster), natural bond orbital (NBO) analysis was perfor med. This showed that the H2O interacts strongly with the Pt surface throug h the higher energy level lone pair of the H2O in a parallel orientation. G eometry optimizations of the adsorbed water molecule on the Pt(111) surface were carried out, and the changes in the orientation and geometry induced by the EF are discussed. In the cases of EF = O and EF > 0, the charge tran sfer interaction between the H2O and the Pt surface dominates and the H2O i s adsorbed at the top site. For EF < 0, the interaction between the dipole moment of the H2O and EF dominates over the charge transfer interaction. Ba sed on the optimized geometries, we have analyzed the vibrational structure and the EF effects on the vibration of the adsorbed H2O. For the (H2O)(2) adsorbed on the Pt(lll) surface, partial-optimization calculations have bee n carried out and the hydrogen bonding in the dimer has been analyzed.