The results of a first-principles study of the structure of the Ag(111)-wat
er interface are presented. The calculations were carried out using an ab i
nitio Car-Parrinello molecular dynamics simulation within a pseudopotential
formalism and the generalized gradient approximation to the exchange-corre
lation potential. Periodic five layer slabs covered with 48 water molecules
were employed to simulate the structure of the interface. An analysis of t
he structural properties of the interface shows that the preferable places
of residence of H2O molecules in the contact overlayer are the metal top si
tes. The electronic structure of the interface has also been explored. It w
as found that there is a strong coupling of the water overlayer with the me
tal crystal electronic states. However, the surface-state charge density is
only slightly disturbed by the presence of water. The empty surface states
are seen to not be quenched by the presence of water, which is in qualitat
ive agreement with existing experiments. The electrons donated to the metal
by the water fill the metal crystal electronic states, which is responsibl
e for the dominant coupling of the metal with the water system. (C) 2001 Am
erican Institute of Physics.