Ultrathin metal layers formed on seed particles with different lattice parameters usually exhibit enhanced catalytic performance for a given chemical reaction due to the sufficient lattice strain effect induced by the core region. Herein, we report a gold-catalyzed strategy for the synthesis of core-shell gold-palladium nanoparticles with subnanometer-thick palladium shells towards oxygen reduction reaction. In this approach, owing to the catalysis of gold particles, the reduction of palladium precursors would only occur on the surface of gold cores, preventing the newly formed palladium atoms from self-nucleation. The deposition of palladium atoms gradually changes the surface property of gold seeds, and in particular, the catalytic reduct...
We present a new approach for the synthesis of gold (Au)–palladium (Pd) bimetallic supra-nanoparticl...
Au-Pd core-shell nanocubes and triangular nanoparticles were systematically synthesized from a few P...
Pd−Au core‐shell nanoparticles with a palladium core (diameter about 5.5 nm) and a gold shell (thick...
Core-shell nanoparticles often exhibit improved catalytic properties due to the lattice strain creat...
Construction of core-shell nanostructures with ultrathin shells is a powerful way to leverage the la...
Metal nanoparticles have a large surface area to volume ratio compared to their bulk counterparts, w...
Core-shell particles with thin noble metal shells represent an attractive material class with potent...
ABSTRACT: This article describes the solution-phase synthesis of 4 nm gold nanoparticles with 0.7 at...
Core-shell nanostructures with platinum overlayers conformally coating palladium nano-substrate core...
The efficiency of heterogeneous catalysis of electron-transfer reactions on the surface of gold nano...
This article describes the solution-phase synthesis of 4 nm gold nanoparticles with 0.7 atom-thick, ...
We report a novel biochemical method based on the sacrificial hydrogen strategy to synthesize bimeta...
Oxygen reduction reaction (ORR) was studied on polycrystalline gold, Au(poly), modified by nanosized...
Well-defined core shell gold palladium@palladium nanocrystals (AuPd@Pd) are facilely prepared by a s...
We report a novel biochem. method based on the sacrificial hydrogen strategy to synthesize bimetalli...
We present a new approach for the synthesis of gold (Au)–palladium (Pd) bimetallic supra-nanoparticl...
Au-Pd core-shell nanocubes and triangular nanoparticles were systematically synthesized from a few P...
Pd−Au core‐shell nanoparticles with a palladium core (diameter about 5.5 nm) and a gold shell (thick...
Core-shell nanoparticles often exhibit improved catalytic properties due to the lattice strain creat...
Construction of core-shell nanostructures with ultrathin shells is a powerful way to leverage the la...
Metal nanoparticles have a large surface area to volume ratio compared to their bulk counterparts, w...
Core-shell particles with thin noble metal shells represent an attractive material class with potent...
ABSTRACT: This article describes the solution-phase synthesis of 4 nm gold nanoparticles with 0.7 at...
Core-shell nanostructures with platinum overlayers conformally coating palladium nano-substrate core...
The efficiency of heterogeneous catalysis of electron-transfer reactions on the surface of gold nano...
This article describes the solution-phase synthesis of 4 nm gold nanoparticles with 0.7 atom-thick, ...
We report a novel biochemical method based on the sacrificial hydrogen strategy to synthesize bimeta...
Oxygen reduction reaction (ORR) was studied on polycrystalline gold, Au(poly), modified by nanosized...
Well-defined core shell gold palladium@palladium nanocrystals (AuPd@Pd) are facilely prepared by a s...
We report a novel biochem. method based on the sacrificial hydrogen strategy to synthesize bimetalli...
We present a new approach for the synthesis of gold (Au)–palladium (Pd) bimetallic supra-nanoparticl...
Au-Pd core-shell nanocubes and triangular nanoparticles were systematically synthesized from a few P...
Pd−Au core‐shell nanoparticles with a palladium core (diameter about 5.5 nm) and a gold shell (thick...