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Highly active atomically dispersed CoN 4 fuel cell cathode catalysts derived from surfactant-assisted MOFs: Carbon-shell confinement strategy

  • Guofeng Wang
  • , Yanghua He
  • , Sooyeon Hwang
  • , David A. Cullen
  • , M. Aman Uddin
  • , Lisa Langhorst
  • , Boyang Li
  • , Stavros Karakalos
  • , A. Jeremy Kropf
  • , Evan C. Wegener
  • , Joshua Sokolowski
  • , Mengjie Chen
  • , Debbie Myers
  • , Dong Su
  • , Karren L. More
  • , Shawn Litster
  • , Gang Wu
  • SUNY Buffalo
  • University of Pittsburgh
  • Brookhaven National Laboratory
  • Oak Ridge National Laboratory
  • Carnegie Mellon University
  • University of South Carolina
  • Argonne National Laboratory

Research output: Contribution to journalArticlepeer-review

833 Scopus citations

Abstract

Development of platinum group metal (PGM)-free catalysts for oxygen reduction reaction (ORR) is essential for affordable proton exchange membrane fuel cells. Herein, a new type of atomically dispersed Co doped carbon catalyst with a core-shell structure has been developed via a surfactant-assisted metal-organic framework approach. The cohesive interactions between the selected surfactant and the Co-doped zeolitic imidazolate framework (ZIF-8) nanocrystals lead to a unique confinement effect. During the thermal activation, this confinement effect suppressed the agglomeration of Co atomic sites and mitigated the collapse of internal microporous structures of ZIF-8. Among the studied surfactants, Pluronic F127 block copolymer led to the greatest performance gains with a doubling of the active site density relative to that of the surfactant-free catalyst. According to density functional theory calculations, unlike other Co catalysts, this new atomically dispersed Co-N-C@F127 catalyst is believed to contain substantial CoN 2+2 sites, which are active and thermodynamically favorable for the four-electron ORR pathway. The Co-N-C@F127 catalyst exhibits an unprecedented ORR activity with a half-wave potential (E 1/2 ) of 0.84 V (vs. RHE) as well as enhanced stability in the corrosive acidic media. It also demonstrated high initial performance with a power density of 0.87 W cm -2 along with encouraging durability in H 2 -O 2 fuel cells. The atomically dispersed Co site catalyst approaches that of the Fe-N-C catalyst and represents the highest reported PGM-free and Fe-free catalyst performance.

Original languageEnglish
Pages (from-to)250-260
Number of pages11
JournalEnergy and Environmental Science
Volume12
Issue number1
DOIs
StatePublished - Jan 2019

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