Back to Search Start Over

Comment on "Structure and dynamics of liquid water on rutile TiO2(110)".

Authors :
Wesolowski, David J.
Sofo, Jorge O.
Bandura, Andrei V.
Zhan Zhang
Mamontov, Eugene
Předota, Milan
Kumar, Nitin
Kubicki, James D.
Kent, Paul R. C.
Vlcek, Lukas
Machesky, Michael L.
Fenter, Paul A.
Cummings, Peter T.
Anovitz, Lawrence M.
Skelton, Adam A.
Rosenqvist, Jörgen
Source :
Physical Review B: Condensed Matter & Materials Physics. Apr2012, Vol. 85 Issue 16, p1-5. 5p.
Publication Year :
2012

Abstract

Liu and co-workers [Phys. Rev. Β 82, 161415 (2010)] discussed the long-standing debate regarding whether H20 molecules on the defect-free (110) surface of rutile (α-TiO2) sorb associatively, or there is dissociation of some or all first-layer water to produce hydroxyl surface sites. They conducted static density functional theory (DFT) and DFT molecular dynamics (DFT-MD) investigations using a range of cell configurations and functionals. We have reproduced their static DFT calculations of the influence of crystal slab thickness on water sorption energies. However, we disagree with several assertions made by these authors: (a) that second-layer water structuring and hydrogen bonding to surface oxygens and adsorbed water molecules are "weak"; (b) that translational diffusion of water molecules in direct contact with the surface approaches that of bulk liquid water; and (c) that there is no dissociation of adsorbed water at this surface in contact with liquid water. These assertions directly contradict our published work, which compared synchrotron x-ray crystal truncation rod, second harmonic generation, quasielastic neutron scattering, surface charge titration, and classical MD simulations of rutile (110) single-crystal surfaces and (HO)-dominated powders in contact with bulk water, and (HO)-dominated rutile nanoparticles with several monolayers of adsorbed water. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10980121
Volume :
85
Issue :
16
Database :
Academic Search Index
Journal :
Physical Review B: Condensed Matter & Materials Physics
Publication Type :
Academic Journal
Accession number :
83575989
Full Text :
https://doi.org/10.1103/PhysRevB.85.167401