Issue 16, 2016

Metal–organic framework-derived hybrid of Fe3C nanorod-encapsulated, N-doped CNTs on porous carbon sheets for highly efficient oxygen reduction and water oxidation

Abstract

Active and stable electrocatalysts based on earth-abundant elements for oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) are crucially important for the utilization of renewable energy. Herein, we reported the synthesis of Fe3C nanorod encapsulated, N-doped carbon nanotubes grown on N-doped porous carbon sheets (Fe3C@NCNT/NPC) by simply annealing a Fe-based MOF (MIL-88B) loaded with melamine at 800 °C in N2. Thanks to the synergistic effect of the high density of Fe–N active sites and electric conductance offered by the unique hybrid structure, the as-prepared Fe3C@NCNT/NPC hybrid exhibited a half-wave potential ca. 60 mV more positive and a durability performance much better than that of Pt/C for ORR, and an overpotential ca. 20 mV lower and a Tafel slope much smaller than that of IrO2 for OER, which make it one of the best reported nonprecious metal bifunctional electrocatalysts for oxygen electrode reactions.

Graphical abstract: Metal–organic framework-derived hybrid of Fe3C nanorod-encapsulated, N-doped CNTs on porous carbon sheets for highly efficient oxygen reduction and water oxidation

Supplementary files

Article information

Article type
Paper
Submitted
11 May 2016
Accepted
01 Jun 2016
First published
01 Jun 2016

Catal. Sci. Technol., 2016,6, 6365-6371

Metal–organic framework-derived hybrid of Fe3C nanorod-encapsulated, N-doped CNTs on porous carbon sheets for highly efficient oxygen reduction and water oxidation

P. Zhao, X. Hua, W. Xu, W. Luo, S. Chen and G. Cheng, Catal. Sci. Technol., 2016, 6, 6365 DOI: 10.1039/C6CY01031H

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