Issue 8, 2021

Porous calcium–manganese oxide/carbon nanotube microspheres as efficient oxygen reduction catalysts for rechargeable zinc–air batteries

Abstract

The development of a highly efficient, cost-effective electrocatalyst is essential to sustainable energy storage and conversion processes. In this work, we report on porous composite microspheres of the oxygen-deficient perovskite CaMnO3−δ and carbon nanotubes (δ = 0.23, CMO/CNT), synthesized via co-precipitation with post-hydrothermal treatment as efficient oxygen reduction reaction catalysts for zinc–air batteries. Benefitting from their unique porous spherical structure and synergistic coupling between oxygen-deficient CaMnO3−δ and carbon nanotubes, the composite catalyst CMO/CNT catalyzes the oxygen reduction reaction via a 4-electron pathway with an excellent oxygen reduction reaction activity, representing a new class of low-cost, efficient and durable electrocatalysts for fuel cells and metal–air batteries.

Graphical abstract: Porous calcium–manganese oxide/carbon nanotube microspheres as efficient oxygen reduction catalysts for rechargeable zinc–air batteries

Supplementary files

Article information

Article type
Research Article
Submitted
10 Dec 2020
Accepted
29 Jan 2021
First published
01 Feb 2021

Inorg. Chem. Front., 2021,8, 2052-2060

Porous calcium–manganese oxide/carbon nanotube microspheres as efficient oxygen reduction catalysts for rechargeable zinc–air batteries

N. N. Tham, X. Ge, A. Yu, B. Li, Y. Zong and Z. Liu, Inorg. Chem. Front., 2021, 8, 2052 DOI: 10.1039/D0QI01459A

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