The active (110) surface of the benchmark oxygen evolution catalyst RuO2 spans a flat-band surface state (FBSS) between the surface projections of its Dirac nodal lines (DNLs) that define the electronic properties of this functional semimetal. Monitoring well-known surface adsorption processes of H2, O2, NO, and CO by in operando angle-resolved photoemission spectroscopy, we selectively modify the oxidation state of individual Ru surface sites and identify the electronic nature of the FBSS: stabilized by bridging oxygen Obr pz, the FBSS disperses along ⟨001⟩ oriented chains of bridging Rubr 4dz2 orbitals, collapses upon Obr removal, yet remains surprisingly unaffected by the oxidation state of the undercoordinated 1f-cus-Ru species. This direc...
Thermal desorption spectroscopy, ultraviolet photoelectron spectroscopy, low energy electron diffrac...
The primary reason why the RuO2(1 1 0) surface is much more active in the oxidation of CO than the c...
Using a variety of dedicated surface sensitive techniques, we studied the interaction of hydrogen wi...
The active (110) surface of the benchmark oxygen evolution catalyst RuO2 spans a flat-band surface st...
While the surface atomic structure of RuO2 has been well studied in ultra high vacuum, much less is ...
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 (Oâ) and by co...
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 (O-beta) and b...
Angular momentum seems to not be conserved in chemical reactions where one of the reactants is magne...
While the surface atomic structure of RuO2 has been well studied in ultra high vacuum, much less is ...
RuO2(110) surfaces were prepared by exposing Ru(0001) to 10(7) L of O-2 at 700 K. Postexposure of O-...
The structure of RuO2(110) and the mechanism for catalytic carbon monoxide oxidation on this surface...
The primary reason why the RuO2(1 1 0) surface is much more active in the oxidation of CO than the c...
The structure and reactivity of the oxygen phases on Ru(0001) and Ru(100) and the bulk RuO2(101) sur...
Thermal desorption spectroscopy, ultraviolet photoelectron spectroscopy, low energy electron diffrac...
The primary reason why the RuO2(1 1 0) surface is much more active in the oxidation of CO than the c...
Using a variety of dedicated surface sensitive techniques, we studied the interaction of hydrogen wi...
The active (110) surface of the benchmark oxygen evolution catalyst RuO2 spans a flat-band surface st...
While the surface atomic structure of RuO2 has been well studied in ultra high vacuum, much less is ...
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 (Oâ) and by co...
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 (O-beta) and b...
Angular momentum seems to not be conserved in chemical reactions where one of the reactants is magne...
While the surface atomic structure of RuO2 has been well studied in ultra high vacuum, much less is ...
RuO2(110) surfaces were prepared by exposing Ru(0001) to 10(7) L of O-2 at 700 K. Postexposure of O-...
The structure of RuO2(110) and the mechanism for catalytic carbon monoxide oxidation on this surface...
The primary reason why the RuO2(1 1 0) surface is much more active in the oxidation of CO than the c...
The structure and reactivity of the oxygen phases on Ru(0001) and Ru(100) and the bulk RuO2(101) sur...
Thermal desorption spectroscopy, ultraviolet photoelectron spectroscopy, low energy electron diffrac...
The primary reason why the RuO2(1 1 0) surface is much more active in the oxidation of CO than the c...
Using a variety of dedicated surface sensitive techniques, we studied the interaction of hydrogen wi...