Engineering Ru@Pt core-shell catalysts for enhanced electrochemical oxygen reduction mass activity and stability

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Abstract

Improving the performance of oxygen reduction reaction (ORR) electrocatalysts is essential for the commercial efficacy ofmany renewable energy technologies, including lowtemperature 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 synthetic parameters, including Pt to Ru ratios and catalyst pretreatments (i.e., annealing) are thoroughly explored. Pt-based mass activity of all prepared Ru@Pt/C catalysts was found to exceed 0.4 mgPt-1 across the range of compositions investigated,with themaximumactivity catalyst having a Ru:Pt ratio of 1:1. This optimized composition of Ru@Pt/C catalyst demonstrated remarkable stability after 30,000 accelerated durability cycles (0.6 to 1.0 V vs. RHE at 125mV s-1),maintaining 85%of its initialmass activity. Scanning transmission electron microscopy energy dispersive spectroscopy (STEM-EDS) analysis at various stages of electrochemical testing demonstrated that the Pt shell can provide sufficient protection against the dissolution of the otherwise unstable Ru core.

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Jackson, A., Strickler, A., Higgins, D., & Jaramillo, T. F. (2018). Engineering Ru@Pt core-shell catalysts for enhanced electrochemical oxygen reduction mass activity and stability. Nanomaterials, 8(1). https://doi.org/10.3390/nano8010038

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