4.8 Article

Ultrathin Nanotube Structure for Mass-Efficient and Durable Oxygen Reduction Reaction Catalysts in PEM Fuel Cells

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 144, Issue 41, Pages 19106-19114

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.2c08361

Keywords

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Funding

  1. National Natural Science Foundation of China
  2. Beijing Natural Science Foundation
  3. National Key Research and Development Program of China
  4. [U21A20328]
  5. [21975010]
  6. [Z200012]
  7. [2021YFB4000601]

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This study reports platinum-based alloy catalysts with ultrathin holey nanotube structure, which achieve high mass activity and high durability, providing an effective structural strategy for proton-exchange-membrane fuel cells.
It remains a challenge for platinum-based oxygen reduction reaction catalysts to simultaneously possess high mass activity and high durability in proton-exchange-membrane fuel cells. Herein, we report ultrathin holey nanotube (UHT)-structured Pt-M (M = Ni, Co) alloy catalysts that achieve unprecedented comprehensive performance. The nanotubes have ultrathin walls of 2-3 nm and construct self-supporting network-like catalyst layers with thicknesses of less than 1 mu m, which have efficient mass transfer and 100% surface exposure, thus enabling high utilization of Pt atoms. Combined with the high intrinsic activity produced by the alloying effect, the catalysts achieve high mass activity. Moreover, the nanotube structure not only avoids the agglomeration problem of nanoparticles, but the low curvature of the tube wall also gives UHT a low surface energy (less than 1/3 of that of the same size nanoparticle), so UHT is more resistant to the Ostwald ripening and is stable. For the first time, the U.S. DOE mass activity target and dual durability targets for load and start-stop cycles are achieved on one catalyst. This study provides an effective structural strategy for the preparation of electrocatalysts with high atomic efficiency and excellent durability.

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