Bimetallic nanoparticles with core-shell structures usually display enhanced catalytic properties due to the lattice strain created between the core and shell regions. In this study, we demonstrate the application of bimetallic Au-Pd nanoparticles with an Au core and a thin Pd shell as cathode catalysts in microbial fuel cells, which represent a promising technology for wastewater treatment, while directly generating electrical energy. In specific, in comparison with the hollow structured Pt nanoparticles, a benchmark for the electrocatalysis, the bimetallic core-shell Au-Pd nanoparticles are found to have superior activity and stability for oxygen reduction reaction in a neutral condition due to the strong electronic interaction and lattic...
We report a novel biochem. method based on the sacrificial hydrogen strategy to synthesize bimetalli...
One of the most significant barriers for the commercialization of Proton Exchange Membrane Fuel Cell...
We showed earlier that using Au nanoparticles of ca. 3.5 nm for the cores to construct core-shell Au...
Bimetallic nanoparticles with core-shell structures usually display enhanced catalytic properties ...
Optimizing the shape, structure, and interface of noble metal bimetallic nanostructures significantl...
A novel method for synthesizing Au@Pd core-shell nanoparticles was proposed based on photochemistry....
Core- shell nanocatalysts have demonstrated potential as highly active low-Pt fuel cell cathodes for...
Bimetallic Pt-Pd core-shell nanocrystals (NCs) are synthesized through a two-step process with contr...
7 ABSTRACT: We report a facile synthesis of monodisperse core/shell 5/1.5 nm Au/CuPt 8 nanoparticles...
Ultra-low Pt catalysts with Pt(shell)-Au(core) nanostructure were prepared by seed mediate method fo...
Core-shell nanoparticles often exhibit improved catalytic properties due to the lattice strain creat...
Optimizing the shape, structure, and interface of noble metal bimetallic nanostructures significantl...
Reducing the Pt usage by improving the activity of Pt catalysts for oxygen reduction reaction is imp...
Engineering the electronic coupling in platinum-based heterogeneous nanomaterials is an effective ...
Developing active and cost-effective electrocatalysts for methanol electrooxidation is crucial to th...
We report a novel biochem. method based on the sacrificial hydrogen strategy to synthesize bimetalli...
One of the most significant barriers for the commercialization of Proton Exchange Membrane Fuel Cell...
We showed earlier that using Au nanoparticles of ca. 3.5 nm for the cores to construct core-shell Au...
Bimetallic nanoparticles with core-shell structures usually display enhanced catalytic properties ...
Optimizing the shape, structure, and interface of noble metal bimetallic nanostructures significantl...
A novel method for synthesizing Au@Pd core-shell nanoparticles was proposed based on photochemistry....
Core- shell nanocatalysts have demonstrated potential as highly active low-Pt fuel cell cathodes for...
Bimetallic Pt-Pd core-shell nanocrystals (NCs) are synthesized through a two-step process with contr...
7 ABSTRACT: We report a facile synthesis of monodisperse core/shell 5/1.5 nm Au/CuPt 8 nanoparticles...
Ultra-low Pt catalysts with Pt(shell)-Au(core) nanostructure were prepared by seed mediate method fo...
Core-shell nanoparticles often exhibit improved catalytic properties due to the lattice strain creat...
Optimizing the shape, structure, and interface of noble metal bimetallic nanostructures significantl...
Reducing the Pt usage by improving the activity of Pt catalysts for oxygen reduction reaction is imp...
Engineering the electronic coupling in platinum-based heterogeneous nanomaterials is an effective ...
Developing active and cost-effective electrocatalysts for methanol electrooxidation is crucial to th...
We report a novel biochem. method based on the sacrificial hydrogen strategy to synthesize bimetalli...
One of the most significant barriers for the commercialization of Proton Exchange Membrane Fuel Cell...
We showed earlier that using Au nanoparticles of ca. 3.5 nm for the cores to construct core-shell Au...