Issue 7, 2023

Biomass derived robust Fe4N active sites supported on porous carbons as oxygen reduction reaction catalysts for durable Zn–air batteries

Abstract

It is necessary to explore affordable, high-performance, and durable catalysts for the oxygen reduction reaction (ORR). Herein, a zinc-assisted pyrolysis-biomass strategy was proposed to prepare robust Fe4N active sites supported on porous carbons (Fe4N@N–C) and achieve a large-scale preparation. Benefiting from the synergistic effect between Fe4N active sites and highly graphitized three-dimensional porous carbon, which possess high intrinsic activity and strong adaptability, the obtained Fe4N@N–C catalyst exhibits a half-wave potential (E1/2) of 0.903 V and remarkable catalytic stability (only a 1 mV negative shift of E1/2 after 5000 cycles) in alkaline media. Theoretical calculations demonstrate that the outstanding activity originates from the synergistic effect of Fe4N sites and graphitic N-doped carbon, which could efficiently reduce the energy barrier in the ORR process. The assembled aqueous and solid-state Zn–air batteries (ZABs) deliver high peak power densities of 182 and 121 mW cm−2. Interestingly, the aqueous ZAB shows a stable cycle for 1033 hours (6198 cycles). This work provides a method for obtaining efficient and durable catalysts as a result of the low-cost and sustainable preparation process of biomass.

Graphical abstract: Biomass derived robust Fe4N active sites supported on porous carbons as oxygen reduction reaction catalysts for durable Zn–air batteries

Supplementary files

Article information

Article type
Paper
Submitted
08 Nov 2022
Accepted
21 Jan 2023
First published
01 Feb 2023

J. Mater. Chem. A, 2023,11, 3725-3734

Biomass derived robust Fe4N active sites supported on porous carbons as oxygen reduction reaction catalysts for durable Zn–air batteries

X. Lu, P. Yang, H. Xu, L. Xiao, L. Liu, R. Li, E. Alekseeva, J. Zhang, O. Levin and M. An, J. Mater. Chem. A, 2023, 11, 3725 DOI: 10.1039/D2TA08737E

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