Size-Dependence of the Electrochemical Activity of Platinum Particles in the 1 to 2 Nanometer Range

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Abstract

Monodisperse Pt nanoparticles supported on carbon (Pt/C) were prepared via an impregnation method. By changing the concentration of the platinum precursor in the initial reagent mixture, the average particle size (d) could be controlled to within a narrow range of less than 2 nm. The specific activity (SA) of these materials, when applied to the oxygen reduction reaction (ORR), increased rapidly with d in the range below 1.8 nm, with a maximum SA at d = 1.3 nm. This value is approximately four times that of a commercial Pt/CB catalyst. The electrochemical active area, ECAA (electrochemical surface area (ECSA)/specific surface area (SSA) × 100), decreased drastically from 100% with decreases in d below 1.3 nm. In this study, we present a correlation between SA and ECAA as a means of determining the appropriate d for polymer electrolyte fuel cells (PEFCs) and propose an optimal size.

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Yano, H., & Iwasaki, K. (2024). Size-Dependence of the Electrochemical Activity of Platinum Particles in the 1 to 2 Nanometer Range. Surfaces, 7(3), 472–481. https://doi.org/10.3390/surfaces7030030

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