Fast Diffusion of O 2 on Nitrogen-Doped Graphene to Enhance Oxygen Reduction and Its Application for High-Rate Zn-Air Batteries

N-doped graphene (NDG) was investigated for oxygen reduction reaction (ORR) and used as air-electrode catalyst for Zn-air batteries. Electrochemical results revealed a slightly lower kinetic activity but a much larger rate capability for the NDG than commercial 20% Pt/C catalyst. The maximum power d...

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Veröffentlicht in:ACS applied materials & interfaces 2017-03, Vol.9 (8), p.7125-7130
Hauptverfasser: Tian, Lei-Lei, Yang, Jie, Weng, Mou-Yi, Tan, Rui, Zheng, Jia-Xin, Chen, Hai-Biao, Zhuang, Quan-Chao, Dai, Li-Ming, Pan, Feng
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Sprache:eng
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Zusammenfassung:N-doped graphene (NDG) was investigated for oxygen reduction reaction (ORR) and used as air-electrode catalyst for Zn-air batteries. Electrochemical results revealed a slightly lower kinetic activity but a much larger rate capability for the NDG than commercial 20% Pt/C catalyst. The maximum power density for a Zn-air cell with NDG air cathode reached up to 218 mW cm , which is nearly 1.5 times that of its counterpart with the Pt/C (155 mW cm ). The equivalent diffusion coefficient (D ) of oxygen from electrolyte solution to the reactive sites of NDG was evaluated as about 1.5 times the liquid-phase diffusion coefficient (D ) of oxygen within bulk electrolyte solution. Combined with experiments and ab initio calculations, this seems counterintuitive reverse ORR of NDG versus Pt/C can be rationalized by a spontaneous adsorption and fast solid-state diffusion of O on ultralarge graphene surface of NDG to enhance effective ORR on N-doped-catalytic-centers and to achieve high-rate performance for Zn-air batteries.
ISSN:1944-8244
1944-8252
DOI:10.1021/acsami.6b15235