Issue 12, 2015

Facile fabrication of sandwich-structured Co3O4/N-rGO/AB hybrid with enhanced ORR electrocatalytic performances for metal–air batteries

Abstract

Exploring alternative catalysts with low cost and high catalytic performance to the existing Pt and Pt-based catalysts used in oxygen reduction reactions (ORR) is crucial for the extensive commercial application of metal–air batteries and fuel cells. Herein, we have rationally designed and facilely synthesized a sandwich-structured Co3O4/N-reduced graphene oxide (rGO)/acetylene black (AB) hybrid as a novel ORR catalyst for these renewable energy conversion/storage devices. With N doped to rGO, the size of the Co3O4 nanoparticles decreases pronouncedly and the ORR activity enhances significantly when compared to Co3O4/rGO/AB and Co3O4/rGO. At the same time, rotating-disk electrode measurements reveal that the electrocatalytic reduction process using Co3O4/N-rGO/AB is a 4e transfer pathway, while Co3O4/rGO/AB and Co3O4/rGO hybrids possess a reduction process of dominant 4e with partial 2e. Remarkably, Co3O4/N-rGO/AB displays superior electrochemical performance including activity and durability in comparison with commercially available Pt/C, which is further confirmed by the full cell tests for aluminum–air batteries with them as the electrocatalysts, suggesting that Co3O4/N-rGO/AB is a promising candidate as an alternative to Pt and Pt-based catalysts.

Graphical abstract: Facile fabrication of sandwich-structured Co3O4/N-rGO/AB hybrid with enhanced ORR electrocatalytic performances for metal–air batteries

Article information

Article type
Paper
Submitted
16 Oct 2014
Accepted
23 Dec 2014
First published
23 Dec 2014

RSC Adv., 2015,5, 9057-9063

Facile fabrication of sandwich-structured Co3O4/N-rGO/AB hybrid with enhanced ORR electrocatalytic performances for metal–air batteries

Y. Zhang, Q. Wang, J. Li, X. Wang, K. Liu, H. Feng, J. Jiang, J. Li and D. Qian, RSC Adv., 2015, 5, 9057 DOI: 10.1039/C4RA12510J

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