Improving the performance of oxygen reduction reaction (ORR) electrocatalysts is essential for the commercial efficacy of many renewable energy technologies, including low temperature polymer electrolyte fuel cells (PEFCs). Herein, we report highly active and stable carbon-supported Ru@Pt core-shell nanoparticles (Ru@Pt/C) prepared by a wet chemical synthesis technique. Through rotating disc electrode testing, the Ru@Pt/C achieves an ORR Pt mass-based activity of 0.50 A mgPt−1 at 0.9 V versus the reversible hydrogen electrode (RHE), which exceeds the activity of the state-of-the-art commercial Pt/C catalyst as well as the Department of Energy 2020 PEFC electrocatalyst activity targets for transportation applications. The impact of various s...
Fuel cells are devices that can efficiently convert fuels into electricity without the limitation of...
Ruthenium oxide/titanium oxide, with a Ru:Ti atomic ratio of 7:3 was synthesized by modified sol-gel...
The synthesis of core-shell Pt(Cu) and Pt-Ru(Cu) electrocatalysts allows for a reduction in the amou...
International audiencePt-based electrocatalysts with higher activity and durability are necessary fo...
Carbon-supported Pt-Ru alloys with a Pt/Ru ratio of 1:1 were prepared by NaBH4 reduction at room tem...
Core@shell electrocatalysts for fuel cells have the advantages of a high utilization of Pt and the m...
Developing a large-scale method to produce platinum (Pt)-based electrocatalysts for the oxygen reduc...
For the use of polymer electrolyte membrane fuel cells (PEMFCs) in heavy duty applications, on-site ...
Carbon-supported Pt–Ru alloys with a Pt/Ru ratio of 1:1 were prepared by NaBH4 reduction at room tem...
Ru@Pt core–shell particles are relevant for application as electrocatalysts in fuel cells. The Ru co...
A series of Pt modified Pd/C catalysts (Pt/Pd/C) with different Pt/Pd molar ratio (Pt:Pd = 1:4, 1:2 ...
We report a new method for deposition of Pt on a metal core to develop real electrocatalysts with si...
Fuel cells are devices that can efficiently convert fuels into electricity without the limitation of...
Ruthenium oxide/titanium oxide, with a Ru:Ti atomic ratio of 7:3 was synthesized by modified sol-gel...
The synthesis of core-shell Pt(Cu) and Pt-Ru(Cu) electrocatalysts allows for a reduction in the amou...
International audiencePt-based electrocatalysts with higher activity and durability are necessary fo...
Carbon-supported Pt-Ru alloys with a Pt/Ru ratio of 1:1 were prepared by NaBH4 reduction at room tem...
Core@shell electrocatalysts for fuel cells have the advantages of a high utilization of Pt and the m...
Developing a large-scale method to produce platinum (Pt)-based electrocatalysts for the oxygen reduc...
For the use of polymer electrolyte membrane fuel cells (PEMFCs) in heavy duty applications, on-site ...
Carbon-supported Pt–Ru alloys with a Pt/Ru ratio of 1:1 were prepared by NaBH4 reduction at room tem...
Ru@Pt core–shell particles are relevant for application as electrocatalysts in fuel cells. The Ru co...
A series of Pt modified Pd/C catalysts (Pt/Pd/C) with different Pt/Pd molar ratio (Pt:Pd = 1:4, 1:2 ...
We report a new method for deposition of Pt on a metal core to develop real electrocatalysts with si...
Fuel cells are devices that can efficiently convert fuels into electricity without the limitation of...
Ruthenium oxide/titanium oxide, with a Ru:Ti atomic ratio of 7:3 was synthesized by modified sol-gel...
The synthesis of core-shell Pt(Cu) and Pt-Ru(Cu) electrocatalysts allows for a reduction in the amou...