4.7 Article

Wetting of mixed OH/H2O layers on pt(111)

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 128, Issue 7, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.2830266

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Funding

  1. Engineering and Physical Sciences Research Council [EP/C510968/1] Funding Source: researchfish

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We describe the effect of growth temperature and OH/H2O composition on the wetting behavior of Pt(111). Changes to the desorption rate of ice films were measured and correlated to the film morphology using low energy electron diffraction and thermal desorption of chloroform to measure the area of multilayer ice and monolayer OH/H2O exposed. Thin ice films roughen, forming bare (root 39x root 39)R16 degrees water monolayer and ice clusters. The size of the clusters depends on growth temperature and determines their kinetic stability, with the desorption rate decreasing when larger clusters are formed by growth at high temperature. Continuous films of more than approximately 50 layers thick stabilize an ordered incommensurate ice film that does not dewet. OH coadsorption pins the first layer into registry with Pt, forming an ordered hexagonal (OH+H2O) structure with all the H atoms involved in hydrogen bonding. Although this layer has a similar honeycomb OHx skeleton to ice Ih, it is unable to reconstruct to match the bulk ice lattice parameter and does not form a stable wetting layer. Water aggregates to expose bare monolayer (OH+H2O), forming bulk ice crystallites whose size depend on preparation temperature. Increasing the proportion of water in the first layer provides free OH groups which stabilize the multilayer. The factors influencing multilayer wetting are discussed using density functional theory calculations to compare water adsorption on top of (OH+H2O) and on simple models for commensurate water structures. We show that both the (OH+H2O) structure and H-down water layers are poor proton acceptors, bonding to the first layer being enhanced by the presence of free OH groups. Formation of an ordered ice multilayer requires a water-metal interaction sufficient to wet the surface, but not so strong as to prevent the first layer relaxing to stabilize the interface between the metal and bulk ice. (c) 2008 American Institute of Physics.

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