Materials & Energyarticle2026-08-05

Systematic Tuning of Lattice Strain and Surface Structures of Platinum Alloy Nanowires for Enhanced Oxygen Reduction Performance

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Abstract

Abstract The development of nanostructured catalysts with improved oxygen reduction reaction (ORR) performance is pivotal for advancing high-performing polymer electrolyte fuel cells (PEFCs). In this study, we synthesized Pt-alloy nanowires with systematically tuned morphologies, ranging from smooth structures to nanobumpy architectures, and investigated their impact on ORR performance. By investigating synthesis parameters, a nanobumpy Pt70Ni28Co1W1 nanowire supported on carbon delivered high ORR performance: mass activity of 1.6 A mgPt−1 and specific activity of 3.9 mA cmPt−2, which are approximately 6 and 11 times higher, respectively, than those of the commercial Pt nanoparticle catalyst on carbon. Structural characterization shows that alloying combined with nanobumpiness substantially increases compressive lattice strain (≈−3% for nanobumpy Pt-alloy nanowires versus ≈−1% for smooth Pt-alloy nanowires). Most of the developed catalysts exhibited improved specific ORR activity with increasing compressive lattice strain; however, a nanowire exhibited low ORR-specific activity, despite possessing a strong compressive strain of (≈−3%). Surface analysis indicates that achieving enhanced catalytic activity requires both pronounced compressive strain and an increased exposure of highly active surface facets, such as (111) facets and high-index step sites. These structure-controlled Pt-alloy nanowires, along with the described synthesis strategies, provide valuable insights into the structural design of advanced ORR electrocatalysts.

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View paper (DOI)OpenAlexACS CatalysisPublished 2026-08-05

Authors: Subha Panampillil Vijayamma, Hidenori Kuroki, Gopinathan M. Anilkumar, Masazumi Arao, Masashi Matsumoto, Hideto Imai, Takeo Yamaguchi

Institutions: Tokyo Institute of Technology, Shinko Electric Industries (Japan)