Angewandte Chemie International Edition · 2018 · 104 citations · 32 references
EngineeringMetal NanoparticlesNanoheterogeneous CatalysisNanocatalysisWater ElectrolyzersChemistryChemical EngineeringRu NanoparticlesThree‐dimensional BranchedStable FacetsActive Ru NanoparticlesOxygen Evolution ElectrocatalysisFaceted Gold–ruthenium NanoparticlesMaterials ScienceCatalysisElectrochemistryOxygen Reduction ReactionNanomaterialsHeterogeneous CatalysisSingle-atom Catalyst
Achieving stability with highly active Ru nanoparticles for electrocatalysis is a major challenge for the oxygen evolution reaction. As improved stability of Ru catalysts has been shown for bulk surfaces with low-index facets, there is an opportunity to incorporate these stable facets into Ru nanoparticles. Now, a new solution synthesis is presented in which hexagonal close-packed structured Ru is grown on Au to form nanoparticles with 3D branches. Exposing low-index facets on these 3D branches creates stable reaction kinetics to achieve high activity and the highest stability observed for Ru nanoparticle oxygen evolution reaction catalysts. These design principles provide a synthetic strategy to achieve stable and active electrocatalysts.
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Universality in Oxygen Evolution Electrocatalysis on Oxide Surfaces
Isabela C. Man, Hai‐Yan Su, Federico Calle‐Vallejo et al. · ChemCatChem · 2011 · 4.4K citations
Youngmin Lee, Jin Suntivich, Kevin J. May et al. · The Journal of Physical Chemistry Letters · 2012 · 3.4K citations
Materials Science, Oxygen Reduction Reaction, Chemical Engineering +14
Pd-Pt Bimetallic Nanodendrites with High Activity for Oxygen Reduction
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