Identification of catalytic sites in cobalt-nitrogen-carbon materials for the oxygen reduction reaction

Идентификация каталитических центров в кобальт-азот-углеродных материалах для реакции восстановления кислорода
George F. Harrington, Emiliano Fonda, Tzonka Mineva, Andrea Zitolo, Frédéric Jaouen, Jingkun Li, Sanjeev Mukerjee, Qingying Jia, Nastaran Ranjbar-Sahraie, Serban N. Stamatin, Stephen Matthew Lyth, Petr Krtil
2017-10-10

X-ray absorption spectroscopycobalt-nitrogen-carbon materialsdensity functional theoryoxygen reduction reactionsingle-atom catalysts
Abstract Single-atom catalysts with full utilization of metal centers can bridge the gap between molecular and solid-state catalysis. Metal-nitrogen-carbon materials prepared via pyrolysis are promising single-atom catalysts but often also comprise metallic particles. Here, we pyrolytically synthesize a Co–N–C material only comprising atomically dispersed cobalt ions and identify with X-ray absorption spectroscopy, magnetic susceptibility measurements and density functional theory the structure and electronic state of three porphyrinic moieties, CoN 4 C 12 , CoN 3 C 10,porp and CoN 2 C 5 . The O 2 electro-reduction and operando X-ray absorption response are measured in acidic medium on Co–N–C and compared to those of a Fe–N–C catalyst prepared similarly. We show that cobalt moieties are unmodified from 0.0 to 1.0 V versus a reversible hydrogen electrode, while Fe-based moieties experience structural and electronic-state changes. On the basis of density functional theory analysis and established relationships between redox potential and O 2 -adsorption strength, we conclude that cobalt-based moieties bind O 2 too weakly for efficient O 2 reduction.
1
A pyrolytically synthesized Co–N–C material contains only atomically dispersed cobalt ions, with no metallic cobalt particles reported.
2
Cobalt moieties remain structurally and electronically unchanged between 0.0 and 1.0 V versus the reversible hydrogen electrode.
3
Density functional theory and redox-potential–oxygen-binding relationships indicate that cobalt moieties bind O₂ too weakly to efficiently catalyze oxygen reduction.
4
Unlike cobalt sites, similarly prepared iron-based moieties undergo structural and electronic-state changes during operation in acidic medium.
5
X-ray absorption spectroscopy, magnetic susceptibility, and density functional theory identify three porphyrinic cobalt motifs: CoN₄C₁₂, CoN₃C₁₀,porp, and CoN₂C₅.

Cobalt–nitrogen–carbon (Co–N–C) catalytic moieties/active sites in nitrogen-doped carbon materials with atomically dispersed cobalt

the structures, electronic states, and oxygen-binding and oxygen-reduction behavior of cobalt moieties in acidic medium

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2017-10-10
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Authors
George F. Harrington
Emiliano Fonda
Tzonka Mineva
Andrea Zitolo
Frédéric Jaouen
Jingkun Li
Sanjeev Mukerjee
Qingying Jia
Nastaran Ranjbar-Sahraie
Serban N. Stamatin
Stephen Matthew Lyth
Petr Krtil
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