While the surface atomic structure of RuO2 has been well studied in ultra high vacuum, much less is known about the interaction between water and RuO2 in aqueous solution. In this work, in situ surface X-ray scattering measurements combined with density functional theory (DFT) were used to determine the surface structural changes on single-crystal RuO2(110) as a function of potential in acidic electrolyte. The redox peaks at 0.7, 1.1 and 1.4 V vs. reversible hydrogen electrode (RHE) could be attributed to surface transitions associated with the successive deprotonation of -H2O on the coordinatively unsaturated Ru sites (CUS) and hydrogen adsorbed to the bridging oxygen sites. At potentials relevant to the oxygen evolution reaction (OER), an...
With in situ surface X-ray diffraction (SXRD)and X-ray reflectivity (XRR) in combination with ex sit...
Rutile RuO2 is a prime catalyst for the oxygen evolution reaction (OER) in water splitting. Whereas ...
The fundamental understanding of the electrode/electrolyte interface is of pivotal importance for th...
While the surface atomic structure of RuO2 has been well studied in ultra high vacuum, much less is ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2019Cat...
Using a variety of dedicated surface sensitive techniques, we studied the interaction of hydrogen wi...
Rutile RuO<sub>2</sub> is a highly active catalyst for a number of (electro)chemical reactions in a...
The interaction of hydrogen with RuO2(110) surfaces was studied by means of thermal desorption and v...
RuO2 is a conducting transition metal oxide that has unique redox properties to be used as heterogen...
The interaction of hydrogen with RuO2(110) surfaces was studied by means of thermal desorption and v...
The stoichiometric RuO2(110) surface is terminated by bridge-coordinated oxygen atoms (O-beta) and b...
Over the past few years, RuO2 has developed into one of the best-characterized late transition metal...
The stoichiometric RuO2(110) surface is terminated by bridge-coordinated oxygen atoms (O-beta) and b...
The stoichiometric RuO2(110) surface is terminated by bridge-coordinated oxygen atoms (Oâ) and by co...
Notwithstanding RuO 2 is one of the most active catalysts toward oxygen evolution reaction (OER), a...
With in situ surface X-ray diffraction (SXRD)and X-ray reflectivity (XRR) in combination with ex sit...
Rutile RuO2 is a prime catalyst for the oxygen evolution reaction (OER) in water splitting. Whereas ...
The fundamental understanding of the electrode/electrolyte interface is of pivotal importance for th...
While the surface atomic structure of RuO2 has been well studied in ultra high vacuum, much less is ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2019Cat...
Using a variety of dedicated surface sensitive techniques, we studied the interaction of hydrogen wi...
Rutile RuO<sub>2</sub> is a highly active catalyst for a number of (electro)chemical reactions in a...
The interaction of hydrogen with RuO2(110) surfaces was studied by means of thermal desorption and v...
RuO2 is a conducting transition metal oxide that has unique redox properties to be used as heterogen...
The interaction of hydrogen with RuO2(110) surfaces was studied by means of thermal desorption and v...
The stoichiometric RuO2(110) surface is terminated by bridge-coordinated oxygen atoms (O-beta) and b...
Over the past few years, RuO2 has developed into one of the best-characterized late transition metal...
The stoichiometric RuO2(110) surface is terminated by bridge-coordinated oxygen atoms (O-beta) and b...
The stoichiometric RuO2(110) surface is terminated by bridge-coordinated oxygen atoms (Oâ) and by co...
Notwithstanding RuO 2 is one of the most active catalysts toward oxygen evolution reaction (OER), a...
With in situ surface X-ray diffraction (SXRD)and X-ray reflectivity (XRR) in combination with ex sit...
Rutile RuO2 is a prime catalyst for the oxygen evolution reaction (OER) in water splitting. Whereas ...
The fundamental understanding of the electrode/electrolyte interface is of pivotal importance for th...