Understanding the nature of active sites is central to controlling (electro)catalytic activity. Here we employed surface X-ray scattering coupled with density functional theory and surface-enhanced infrared absorption spectroscopy to examine the oxygen evolution reaction on RuO2 surfaces as a function of voltage. At 1.5 VRHE, our results suggest that there is an –OO group on the coordinatively unsaturated ruthenium (RuCUS) site of the (100) surface (and similarly for (110)), but adsorbed oxygen on the RuCUS site of (101). Density functional theory results indicate that the removal of –OO from the RuCUS site, which is stabilized by a hydrogen bond to a neighbouring –OH (–OO–H), could be the rate-determining step for (100) (similarly for (110)), where its reduced binding on (100) increased activity. A further reduction in binding energy on the RuCUS site of (101) resulted in a different rate-determining step (–O + H2O – (H+ + e−) → –OO–H) and decreased activity. Our study provides molecular details on the active sites, and the influence of their local coordination environment on activity. [Figure not available: see fulltext.]

Rao, R., Kolb, M., Giordano, L., Pedersen, A., Katayama, Y., Hwang, J., et al. (2020). Operando identification of site-dependent water oxidation activity on ruthenium dioxide single-crystal surfaces. NATURE CATALYSIS, 3(6), 516-525 [10.1038/s41929-020-0457-6].

Operando identification of site-dependent water oxidation activity on ruthenium dioxide single-crystal surfaces

Giordano L.;
2020

Abstract

Understanding the nature of active sites is central to controlling (electro)catalytic activity. Here we employed surface X-ray scattering coupled with density functional theory and surface-enhanced infrared absorption spectroscopy to examine the oxygen evolution reaction on RuO2 surfaces as a function of voltage. At 1.5 VRHE, our results suggest that there is an –OO group on the coordinatively unsaturated ruthenium (RuCUS) site of the (100) surface (and similarly for (110)), but adsorbed oxygen on the RuCUS site of (101). Density functional theory results indicate that the removal of –OO from the RuCUS site, which is stabilized by a hydrogen bond to a neighbouring –OH (–OO–H), could be the rate-determining step for (100) (similarly for (110)), where its reduced binding on (100) increased activity. A further reduction in binding energy on the RuCUS site of (101) resulted in a different rate-determining step (–O + H2O – (H+ + e−) → –OO–H) and decreased activity. Our study provides molecular details on the active sites, and the influence of their local coordination environment on activity. [Figure not available: see fulltext.]
Articolo in rivista - Articolo scientifico
Electrocatalysis, OER
English
11-mag-2020
2020
3
6
516
525
none
Rao, R., Kolb, M., Giordano, L., Pedersen, A., Katayama, Y., Hwang, J., et al. (2020). Operando identification of site-dependent water oxidation activity on ruthenium dioxide single-crystal surfaces. NATURE CATALYSIS, 3(6), 516-525 [10.1038/s41929-020-0457-6].
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/293321
Citazioni
  • Scopus 169
  • ???jsp.display-item.citation.isi??? 162
Social impact