Water adsorption and surface protonic conduction have been investigated at 25–400 °C in wet (H2O and D2O) atmospheres on nanocrystalline TiO2 hydrothermally grown to a predominance of different crystal facets. In situ Fourier transform infrared spectrometry shows that a portion of the water molecules in the first chemisorbed layer adsorbs dissociatively on the {001} and {100} surfaces, but molecularly on the {101} surface. The next layer of physisorbed molecular water is solid (ice)-like on the {001} and {100} surfaces, a fact that is attributed to relatively strong bonds to the surface terminating hydroxyls. On the other hand, it is looser, liquid-like on the {101} surface due to the lack of rigid hydroxyl groups to bond to. As relative hu...
We have performed non-equilibrium molecular dynamics simulations of various TiO2/water interfaces at...
The speciation of water and hydroxyl groups bound to the surface of a nanocrystalline titania film h...
The interfacial structure of water in contact with TiO2 is the key to understand the mechanism of ph...
The anatase TiO2(101) surface and its interaction with water is an important topic in oxide surface ...
The interaction of water with TiO2 is of substantial scientific and technological interest as it det...
Water adsorption and dissociation processes on pristine low-index TiO2 interfaces are important but ...
The adsorption of water on the TiO2(110) surface has become the model process in efforts to understa...
Water adsorption and dissociation processes on pristine low-index TiO2 interfaces are important but ...
The adsorption of water on the anatase TiO2(001)-(4 x 1) surface is studied using synchrotron radiat...
The adsorption properties of water on the stoichiometric (101) surface of anatase TiO2 in the temper...
The molecular structure and interactions of interfacial water, i.e., the first monolayers of water a...
Preparing an anatase TiO2(101) surface with a high density of oxygen vacancies and associated reduce...
Preparing an anatase TiO2(101) surface with a high density of oxygen vacancies and associated reduce...
X-ray photoelectron spectroscopy at ambient conditions of pressure (up to 1.5 Torr) and temperature ...
Preparing an anatase TiO2(101) surface with a high density of oxygen vacancies and associated reduce...
We have performed non-equilibrium molecular dynamics simulations of various TiO2/water interfaces at...
The speciation of water and hydroxyl groups bound to the surface of a nanocrystalline titania film h...
The interfacial structure of water in contact with TiO2 is the key to understand the mechanism of ph...
The anatase TiO2(101) surface and its interaction with water is an important topic in oxide surface ...
The interaction of water with TiO2 is of substantial scientific and technological interest as it det...
Water adsorption and dissociation processes on pristine low-index TiO2 interfaces are important but ...
The adsorption of water on the TiO2(110) surface has become the model process in efforts to understa...
Water adsorption and dissociation processes on pristine low-index TiO2 interfaces are important but ...
The adsorption of water on the anatase TiO2(001)-(4 x 1) surface is studied using synchrotron radiat...
The adsorption properties of water on the stoichiometric (101) surface of anatase TiO2 in the temper...
The molecular structure and interactions of interfacial water, i.e., the first monolayers of water a...
Preparing an anatase TiO2(101) surface with a high density of oxygen vacancies and associated reduce...
Preparing an anatase TiO2(101) surface with a high density of oxygen vacancies and associated reduce...
X-ray photoelectron spectroscopy at ambient conditions of pressure (up to 1.5 Torr) and temperature ...
Preparing an anatase TiO2(101) surface with a high density of oxygen vacancies and associated reduce...
We have performed non-equilibrium molecular dynamics simulations of various TiO2/water interfaces at...
The speciation of water and hydroxyl groups bound to the surface of a nanocrystalline titania film h...
The interfacial structure of water in contact with TiO2 is the key to understand the mechanism of ph...