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Strain-Modulated Platinum−Palladium Nanowires for Oxygen Reduction Reaction

  • Fangfang Chang
  • , Zhengyu Bai
  • , Matthew Li
  • , Mengyun Ren
  • , Tongchao Liu
  • , Lin Yang
  • , Chuan Jian Zhong
  • , Jun Lu
  • Henan Normal University
  • Argonne National Laboratory
  • University of Waterloo

Research output: Contribution to journalArticlepeer-review

85 Scopus citations

Abstract

Electrocatalytic activity of alloy nanocatalytsts can be manipulated effectively by tuning their physical properties (ensemble, geometric, and ligand effects) to afford optimal surface structure and compositions for proton exchange membrane fuel cell (PEMFC) application. Herein, highly catalytic platinum−palladium nanowires (PtnPd100−n NWs) with a subtle lattice strain and Boerdijk−Coxeter helix type morphology are synthesized through a surfactant-free, thermal single phase solvent method. X-ray diffraction results show that PtnPd100−n NWs are exposed through the (111) facets and their shrinking or expanding lattice parameters can be modulated by the alloy compositions. Electrochemical results reveal that their high catalytic activity correlates with the lattice shrinking, facets, and bimetallic compositions, showing higher activity when the ratio of Pt and Pd is ∼78:22, which is further supported by DFT results. Compared to the nanoparticle type platinum−palladium alloyed catalysts with similar metal compositions (PtnPd100−n NPs), the PtnPd100−n NWs exhibit significantly improved electrocatalytic activity and stability for the oxygen reduction reaction. These findings open new strategies to design the highly active and stable alloy nanocatalysts with controllable compositions.

Original languageEnglish
Pages (from-to)2416-2422
Number of pages7
JournalNano Letters
Volume20
Issue number4
DOIs
StatePublished - 2020

Keywords

  • Platinum−palladium alloy nanowires
  • facet-dominant nanowires
  • fuel cells
  • oxygen reduction reaction

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