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Atomic scale Pt decoration promises oxygen reduction properties of Co@Pd nanocatalysts in alkaline electrolytes for 310k redox cycles

  • Yu Zhuang
  • , Jyh-Pin Chou
  • , Hsin-Yi Tiffany Chen
  • , Yang-Yang Hsu
  • , Chih-Wei Hu
  • , Alice Hu*
  • , Tsan-Yao Chen*
  • *Corresponding author for this work

    Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

    Abstract

    Nanocatalysts (NCs) with Co core-Pd shell structures and surface decoration of atomic scale Pt clusters (namely Co@Pd-Pt) are synthesized by using a self-aligned wet chemical reduction method in carbon nanotube supports. The Co@Pd-Pt contains ~2.48 at% Pt metal. It shows a 30.2-fold mass activity (2056.3 mA mg-1) of the Pt metal as compared to that of commercial Pt catalysts (67.1 mA mg-1) at 0.85 volt (vs. RHE) and shows an exceptional stability of retained current density of similar to 100% vs. the initial ones in an accelerated degradation test (ADT) for over 310k cycles in an alkaline electrolyte. The results of structural characterization and electrochemical analyses reveal that the high current density with substantial stability in the ORR is attributed to a strong electronic coupling and interface lattice that extract electrons from Co and Pd atoms in the presence of atomic Pt clusters in the Pd shell. A worth noticing finding is that such exceptional electrochemical performances are developed in a novel composition window in which Pt atoms are mostly positioned in defect sites of the Pd-Co interface in the shell region.
    Original languageEnglish
    Pages (from-to)946-957
    JournalSustainable Energy & Fuels
    Volume2
    Issue number5
    Online published15 Dec 2017
    DOIs
    Publication statusPublished - May 2018

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 7 - Affordable and Clean Energy
      SDG 7 Affordable and Clean Energy

    Research Keywords

    • METHANOL OXIDATION
    • BIMETALLIC NANOPARTICLES
    • PLATINUM OXIDES
    • CARBON-MONOXIDE
    • CATALYSTS
    • ELECTROOXIDATION
    • SPECTROSCOPY
    • BEHAVIOR
    • METALS

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