The development of efficient and cost‐effective bifunctional electrocatalysts is vital for advancing hydrogen‐based energy technologies. In this study, we present a robust method for fabricating Pt@ZrO 2 electrodes tailored for both the hydrogen evolution reaction and hydrogen oxidation reaction. Using ion beam sputtering deposition, we rapidly and economically deposited a mixed Pt‐Zr layer onto FTO substrates. This approach enabled the formation of Pt@ZrO 2 , a high‐performance ceramic‐based electrocatalyst exhibiting excellent activity and durability under alkaline conditions. Compared to our previously studied Pd@ZrO 2 thin films, Pt@ZrO 2 shows markedly lower charge transfer resistance and improved electrocatalytic activity, as evidenced by electrochemical impedance spectroscopy measurements. The enhanced performance is attributed to the strong synergistic interaction between Pt and ZrO 2 , which, further enhanced by the adopted deposition technique, stabilizes Pt in a partially oxidized state, thereby promoting the Volmer step and improving charge transfer kinetics. Cyclic voltammetry further confirms the electrochemical stability of Pt@ZrO 2 under prolonged operational stress. Notably, this deposition technique significantly reduces noble metal loading without compromising catalytic performance, offering a scalable and cost‐efficient route for electrode fabrication. Overall, Pt@ZrO 2 emerges as a superior alternative to Pd@ZrO 2 and a promising candidate for next‐generation hydrogen energy applications, underlining the effectiveness of the proposed preparation method.
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Simone Minelli
Manuel Iozzia
Claudio Piazzoni
ChemElectroChem
University of Milan
Politecnico di Milano
National Interuniversity Consortium of Materials Science and Technology
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Minelli et al. (Thu,) studied this question.
synapsesocial.com/papers/69ec5b8a88ba6daa22dad050 — DOI: https://doi.org/10.1002/celc.70204