4.8 Article

In Situ Probing of the Active Site Geometry of Ultrathin Nanowires for the Oxygen Reduction Reaction

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 137, 期 39, 页码 12597-12609

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.5b07093

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资金

  1. U.S. Department of Energy, Office of Basic Energy Sciences, Materials Sciences and Engineering Division [DE-AC02-98CH10886, DE-SC-00112704]
  2. Department of Energy [DE-FG02-03ER15476]
  3. US Department of Energy, Division of Chemical Sciences [DE-SC0012704]
  4. Brookhaven National Laboratory [DE-AC02-98CH10886]
  5. National Energy Research Scientific Computing Center (NERSC)
  6. Office of Science of the U.S. DOE [DE-AC02-05CH11231]
  7. Synchrotron Catalysis Consortium, U.S. Department of Energy [DE-FG02-05ER15688]
  8. U.S. Department of Energy [DE-AC02-98CH10886, DE-SC-00112704]
  9. Chemical Sciences, Geosciences, and Biosciences Division, Office of Basic Energy Sciences, Office of Science, U.S. Department of Energy [DE-FG02-13ER16428]

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To create truly effective electrocatalysts for the cathodic reaction governing proton exchange membrane fuel cells (PEMFC), namely the oxygen reduction reaction (ORR), necessitates an accurate and detailed structural understanding of these electrocatalysts, especially at the nanoscale, and to precisely correlate that structure with demonstrable performance enhancement. To address this key issue, we have combined and interwoven theoretical calculations with experimental, spectroscopic observations in order to acquire useful structural insights into the active site geometry with implications for designing optimized nanoscale electrocatalysts with rationally predicted properties. Specifically, we have probed ultrathin (similar to 2 nm) core shell Pt similar to Pd9Au nanowires, n which have been previously shown to be excellent candidates for ORB, in terms of both activity and long-term stability, from the complementary perspectives of both DFT calculations and X-ray absorption spectroscopy (XAS). The combination and correlation of data from both experimental and theoretical studies has revealed for the first time that the catalytically active structure of our ternary nanowires can actually be ascribed to a PtAu similar to Pd configuration, comprising a PtAu binary shell and a pure inner Pd core. Moreover, we have plausibly attributed the resulting structure to a specific synthesis step, namely the Cu underpotential deposition (UPD) followed by galvanic replacement with Pt. Hence, the fundamental insights gained into the performance of our ultrathin nanowires from our demonstrated approach will likely guide future directed efforts aimed at broadly improving upon the durability and stability of nanoscale electrocatalysts in general.

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