Three-Dimensional Branched and Faceted Gold-Ruthenium Nanoparticles: Using Nanostructure to Improve Stability in Oxygen Evolution Electrocatalysis
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Author(s)
Benedetti, Tania M
Cheong, Soshan
Li, Yibing
Chan, Xuan-Hao
Lacroix, Lise-Marie
Chang, Shery LY
Arenal, Raul
Florea, Ileana
Barron, Hector
Barnard, Amanda S
Henning, Anna M
Zhao, Chuan
Schuhmann, Wolfgang
Gooding, J Justin
et al.
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Abstract
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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Angewandte Chemie: International Edition
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57
Issue
32
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Chemical sciences
Science & Technology
Physical Sciences
Chemistry, Multidisciplinary
Chemistry
bimetallic nanoparticles
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Gloag, L; Benedetti, TM; Cheong, S; Li, Y; Chan, X-H; Lacroix, L-M; Chang, SLY; Arenal, R; Florea, I; Barron, H; Barnard, AS; Henning, AM; Zhao, C; Schuhmann, W; Gooding, JJ; et al., Three-Dimensional Branched and Faceted Gold-Ruthenium Nanoparticles: Using Nanostructure to Improve Stability in Oxygen Evolution Electrocatalysis, Angewandte Chemie: International Edition, 2018, 57 (32), pp. 10241-10245