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Tailoring a Three-Phase Microenvironment for High-Performance Oxygen Reduction Reaction in Proton Exchange Membrane Fuel Cells

  • Zipeng Zhao
  • , Md Delowar Hossain
  • , Chunchuan Xu
  • , Zijie Lu
  • , Yi Sheng Liu
  • , Shang Hsien Hsieh
  • , Ilkeun Lee
  • , Wenpei Gao
  • , Jun Yang
  • , Boris V. Merinov
  • , Wang Xue
  • , Zeyan Liu
  • , Jingxuan Zhou
  • , Zhengtang Luo
  • , Xiaoqing Pan
  • , Francisco Zaera
  • , Jinghua Guo
  • , Xiangfeng Duan
  • , William A. Goddard
  • , Yu Huang
  • Computer Science Department, UCLA
  • California Institute of Technology
  • The Hong Kong University of Science and Technology
  • Ford Motor Company
  • Advanced Light Source, Berkeley
  • National Synchrotron Radiation Research Center
  • University of California, Riverside
  • University of California
  • University of California, Los Angeles
  • Long Beach VA and University of California
  • University of California, Santa Cruz

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

Despite tremendous progress in catalyst development for rate-limiting cathodic oxygen reduction reaction (ORR), reducing Pt usage while meeting performance requirements in practical proton exchange membrane fuel cells (PEMFCs) remains a challenge. The ORR in PEMFCs occurs at a catalyst–electrolyte–gas three-phase interface. A desirable interface should exhibit highly active and available catalytic sites, as well as allow efficient oxygen and proton feeding to the catalytic sites and timely removal of water to avoid interface flooding. Here, we report the design of a three-phase microenvironment in PEFMCs, showing that carbon surface chemistry can be tuned to modulate its interaction with the ionomers and create favorable transport paths for rapid delivery of both reactants and products. With such an elaborate interfacial design, for the first time we have demonstrated PEMFCs with all key ORR catalyst performance metrics, including mass activity, rated power, and durability, surpassing the US Department of Energy targets.

langue originaleAnglais
Pages (de - à)1774-1790
Nombre de pages17
journalMatter
Volume3
Numéro de publication5
Les DOIs
étatPublié - 4 nov. 2020
Modification externeOui

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