Understanding the catalytic properties of metal/metal oxide interfaces is gaining importance in heterogeneous catalysis. Density functional theory calculations were employed to understand the mechanism of CO oxidation on TM/SrTiO3 catalysts (TM/STO, TM = Au, Ag, Pd, Pt, Rh, and Ir). Au benefits from O2 dissociation at the Au/STO interface with lower barrier than on corresponding closed-packed Au surface. Doping of STO with fluorine lowers the activation barriers for O2 dissociation. Brønsted-Evans-Polanyi relations are identified for O2 dissociation and a density of states analysis provides insight into the activation of O2 at TM/STO interfaces. Full catalytic cycles for CO oxidation are formulated including O2 dissociative and associative ...
One of the most important advances in modern theoretical surface science and catalysis research has ...
Strontium titanate (SrTiO3) is a promising material for the light-driven conversion of carbon dioxid...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...
Understanding the catalytic properties of metal/metal oxide interfaces is gaining importance in hete...
Understanding the catalytic properties of metal/metal oxide interfaces is gaining importance in hete...
The energetics of the catalytic oxidation of CO on a complex metal oxide are investigated for the fi...
Density functional theory and low energy ion scattering spectroscopy were applied to study the mecha...
In the present work, we investigated the structural and catalytic properties of a prototype system P...
ABSTRACT: Density functional theory is used to determine the reaction mechanisms of CO oxidation and...
Identification of the active sites in heterogeneous catalysis is important for a mechanistic underst...
Distinctions between supported Au and Pt catalysts on TiO<sub>2</sub>(110) for CO oxidation have bee...
Understanding the intrinsic catalytic properties of perovskite materials can accelerate the developm...
Tuning the atomic interface configuration of noble metals (NMs) and transition-metal oxides is an ef...
The interaction of SrO terminated SrTiO3 surface with molecular carbon dioxide and water has been in...
The surface properties of oxidic supports and their interaction with the supported metals play criti...
One of the most important advances in modern theoretical surface science and catalysis research has ...
Strontium titanate (SrTiO3) is a promising material for the light-driven conversion of carbon dioxid...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...
Understanding the catalytic properties of metal/metal oxide interfaces is gaining importance in hete...
Understanding the catalytic properties of metal/metal oxide interfaces is gaining importance in hete...
The energetics of the catalytic oxidation of CO on a complex metal oxide are investigated for the fi...
Density functional theory and low energy ion scattering spectroscopy were applied to study the mecha...
In the present work, we investigated the structural and catalytic properties of a prototype system P...
ABSTRACT: Density functional theory is used to determine the reaction mechanisms of CO oxidation and...
Identification of the active sites in heterogeneous catalysis is important for a mechanistic underst...
Distinctions between supported Au and Pt catalysts on TiO<sub>2</sub>(110) for CO oxidation have bee...
Understanding the intrinsic catalytic properties of perovskite materials can accelerate the developm...
Tuning the atomic interface configuration of noble metals (NMs) and transition-metal oxides is an ef...
The interaction of SrO terminated SrTiO3 surface with molecular carbon dioxide and water has been in...
The surface properties of oxidic supports and their interaction with the supported metals play criti...
One of the most important advances in modern theoretical surface science and catalysis research has ...
Strontium titanate (SrTiO3) is a promising material for the light-driven conversion of carbon dioxid...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...