A partially reduced TiO2 surface exhibits increasingly complex nature when forming various defects, whose stoichiometry, structure and properties are markedly different from those of bulk TiO2. Using scanning tunneling microscopy and density functional theory, we investigate different types of surface defects formed by Ti interstitials on TiO2 (110) and their reactivity toward deposited gold atoms. Sub-stoichiometric strands greatly enhance bonding of Au by transferring the excess charges from the reduced Ti3+ onto the strands. Thus the sub-stoichiometric strands behave as strong electron donor sites toward reactants. On the contrary, fully stoichiometric nanoclusters provide increased Au bonding through its 1-coordinated oxygen, which act...
textCu, Ag, and Au nanoclusters dispersed on TiO2(110) surfaces are utilized in a wide variety of a...
We have used density functional theory calculations based on the projector augmented wave method to ...
Titanium dioxide (TiO2) has a number of uses in catalysis, photochemistry, and sensing that are link...
Through an interplay between scanning tunneling microscopy (STM) and density functional theory (DFT)...
TiO2(110) and (001) have been investigated by low energy electron diffraction (LEED) and scanning tu...
Through an interplay between scanning tunneling microscopy (STM) and density functional theory (DFT)...
We studied the nucleation of gold clusters on TiO2(110) surfaces in three different oxidation states...
The interaction of Au with oxide supports has been found to play a vital role in determining the uni...
Surface defects are important in oxide surface chemistry, because they change not only the surface g...
Au nanoparticles supported on reducible metal oxide surfaces are known to be active catalysts for a ...
The nucleation and growth of Au and Ag nanoparticles on rutile TiO 2(110)-(1 × 1) surfaces in differ...
By a combination of electron paramagnetic resonance spectroscopy, finite-temperature ab initio simul...
Point defects in metal oxides such as TiO2 are key to their applications in numerous technologies. T...
The nucleation and growth of silver nanoclusters on TiO2(110) surfaces with on-top O adatoms (oxidiz...
The role of defects in the chemical activity of the rutile TiO2(110) surface remains a rich topic of...
textCu, Ag, and Au nanoclusters dispersed on TiO2(110) surfaces are utilized in a wide variety of a...
We have used density functional theory calculations based on the projector augmented wave method to ...
Titanium dioxide (TiO2) has a number of uses in catalysis, photochemistry, and sensing that are link...
Through an interplay between scanning tunneling microscopy (STM) and density functional theory (DFT)...
TiO2(110) and (001) have been investigated by low energy electron diffraction (LEED) and scanning tu...
Through an interplay between scanning tunneling microscopy (STM) and density functional theory (DFT)...
We studied the nucleation of gold clusters on TiO2(110) surfaces in three different oxidation states...
The interaction of Au with oxide supports has been found to play a vital role in determining the uni...
Surface defects are important in oxide surface chemistry, because they change not only the surface g...
Au nanoparticles supported on reducible metal oxide surfaces are known to be active catalysts for a ...
The nucleation and growth of Au and Ag nanoparticles on rutile TiO 2(110)-(1 × 1) surfaces in differ...
By a combination of electron paramagnetic resonance spectroscopy, finite-temperature ab initio simul...
Point defects in metal oxides such as TiO2 are key to their applications in numerous technologies. T...
The nucleation and growth of silver nanoclusters on TiO2(110) surfaces with on-top O adatoms (oxidiz...
The role of defects in the chemical activity of the rutile TiO2(110) surface remains a rich topic of...
textCu, Ag, and Au nanoclusters dispersed on TiO2(110) surfaces are utilized in a wide variety of a...
We have used density functional theory calculations based on the projector augmented wave method to ...
Titanium dioxide (TiO2) has a number of uses in catalysis, photochemistry, and sensing that are link...