Stable composition and catalytic activity of surfaces are among the key requirements for materials employed in energy storage and conversion devices, such as solid oxide fuel cells (SOFCs). Perovskite oxides that serve as cathode in SOFCs suffer from segregation of the aliovalent substitutional cations and the formation of an inert, non-conductive phase at the surface. Here, we demonstrate that the surface of the state-of-the-art SOFC cathode material La0.8Sr0.2MnO3 (LSM) is stabilized against the segregation of Sr at high temperature by submonolayer coverages of Hf. The Hf is vapor-deposited onto the LSM thin film surface by e-beam evaporation. Using in situ near-ambient pressure X-ray photoelectron spectroscopy (NAP-XPS), we analyze the s...
Surface modification of perovskites is a new approach to develop highly active and stable cathodes f...
Perovskite oxides can exhibit a wide range of interesting characteristics such as being catalyticall...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...
Stable composition and catalytic activity of surfaces are among the key requirements for materials e...
Thesis (Ph.D.)--Boston UniversitySolid Oxide Fuel Cell (SOFC) technology is an effective method of e...
Perovskite oxides used in heterogeneous catalysis and electrocatalysis are tuned by substitutional d...
Segregation and phase separation of aliovalent dopants on perovskite oxide (ABO3) surfaces are detri...
Solid oxide fuel cells (SOFCs) convert chemical energy directly into electrical energy, leading to s...
We investigated the effects of annealing and A-site stoichiometry on the surface heterostructures at...
International audienceIn order to better understand the mechanism of the reaction of oxygen reductio...
Surface chemistry and reactivity of electrodes in electrochemical devices play a key role for electr...
Segregation and phase separation on perovskite oxide (ABO3) surface have been considered as a key de...
Cation segregation on perovskite oxide surfaces affects vastly the oxygen reduction activity and sta...
While SOFC perovskite oxide cathodes have been the subject of numerous studies, the critical factors...
Cation segregation on perovskite oxide surfaces affects vastly the oxygen reduction activity and sta...
Surface modification of perovskites is a new approach to develop highly active and stable cathodes f...
Perovskite oxides can exhibit a wide range of interesting characteristics such as being catalyticall...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...
Stable composition and catalytic activity of surfaces are among the key requirements for materials e...
Thesis (Ph.D.)--Boston UniversitySolid Oxide Fuel Cell (SOFC) technology is an effective method of e...
Perovskite oxides used in heterogeneous catalysis and electrocatalysis are tuned by substitutional d...
Segregation and phase separation of aliovalent dopants on perovskite oxide (ABO3) surfaces are detri...
Solid oxide fuel cells (SOFCs) convert chemical energy directly into electrical energy, leading to s...
We investigated the effects of annealing and A-site stoichiometry on the surface heterostructures at...
International audienceIn order to better understand the mechanism of the reaction of oxygen reductio...
Surface chemistry and reactivity of electrodes in electrochemical devices play a key role for electr...
Segregation and phase separation on perovskite oxide (ABO3) surface have been considered as a key de...
Cation segregation on perovskite oxide surfaces affects vastly the oxygen reduction activity and sta...
While SOFC perovskite oxide cathodes have been the subject of numerous studies, the critical factors...
Cation segregation on perovskite oxide surfaces affects vastly the oxygen reduction activity and sta...
Surface modification of perovskites is a new approach to develop highly active and stable cathodes f...
Perovskite oxides can exhibit a wide range of interesting characteristics such as being catalyticall...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...