Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial interaction and surface structures at the atomic level, which is important for designing electrocatalysts with high activity and durability. Herein, core-shell structured Pd3M@Pt/C nanoparticles with binary PdM alloy cores (M = Fe, Ni, and Co) and a monolayer Pt shell were successfully synthesized with diverse interfaces. Among these, Pd3Fe@Pt/C exhibited the best oxygen reduction reaction catalytic performance, roughly 5.4 times more than that of the commercial Pt/C catalyst used as reference. The significantly enhanced activity is attributed to the combined effects of strain engineering, interfacial electron transfer, and improved Pt utiliza...
Increasing the electrochemically active surface area (ECSA) and alloying Pt with transition metals (...
Core@shell electrocatalysts for fuel cells have the advantages of a high utilization of Pt and the m...
Deliberately optimizing the d-band position of an active component via electronic and lattice strain...
Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial i...
Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial i...
Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial i...
Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial i...
Nanostructures with nonprecious metal cores and Pt ultrathin shells are recognized as promising cata...
In a search for electrocatalysts based on other metals with comparable attributes to very scarce and...
Design of electrocatalysts with both a high-Pt-utilization efficiency and enhanced electrochemical a...
The oxygen reduction reaction (ORR) on the cathode of a polymer electrolyte fuel cell requires the u...
The rational synthesis of active, durable, and low-cost catalysts is of particular interest to fuel ...
We investigated the oxygen-reduction reaction (ORR) on Pd monolayers on various surfaces and on Pd a...
The oxygen reduction reaction (ORR) on the cathode of a polymer electrolyte fuel cell requires the u...
We demonstrate the synthesis of a core-shell catalyst consisting of a Pt monolayer as the shell and ...
Increasing the electrochemically active surface area (ECSA) and alloying Pt with transition metals (...
Core@shell electrocatalysts for fuel cells have the advantages of a high utilization of Pt and the m...
Deliberately optimizing the d-band position of an active component via electronic and lattice strain...
Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial i...
Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial i...
Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial i...
Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial i...
Nanostructures with nonprecious metal cores and Pt ultrathin shells are recognized as promising cata...
In a search for electrocatalysts based on other metals with comparable attributes to very scarce and...
Design of electrocatalysts with both a high-Pt-utilization efficiency and enhanced electrochemical a...
The oxygen reduction reaction (ORR) on the cathode of a polymer electrolyte fuel cell requires the u...
The rational synthesis of active, durable, and low-cost catalysts is of particular interest to fuel ...
We investigated the oxygen-reduction reaction (ORR) on Pd monolayers on various surfaces and on Pd a...
The oxygen reduction reaction (ORR) on the cathode of a polymer electrolyte fuel cell requires the u...
We demonstrate the synthesis of a core-shell catalyst consisting of a Pt monolayer as the shell and ...
Increasing the electrochemically active surface area (ECSA) and alloying Pt with transition metals (...
Core@shell electrocatalysts for fuel cells have the advantages of a high utilization of Pt and the m...
Deliberately optimizing the d-band position of an active component via electronic and lattice strain...