Abstract

Nowadays, it is very challenging to develop a low-cost, highly active and stable bi-functional catalyst for accelerating oxygen reduction reaction (ORR) and oxygen evolution (OER) reaction during the charge and discharge process of zinc-air battery. Herein, we successfully design a novel bi-metal oxide hybrid catalyst (ZnCo2O4-CNT) by inserting Zn ions. Benefiting from the robust synergetic effects between porous ZnCo2O4 and CNTs, the high conductivity and the unique nanostructure, the ZnCo2O4-CNT shows lots of accessible active sites and improved reactants and electrons transfer. As expected, the hybrid shows higher ORR and OER performances with larger limited diffusion current density (5.72 mA cm−2) and lower OER over-potential (0.49 V) than Pt/C and other ZnCo2O4-CNT samples. In addition, rechargeable zinc-air battery assembled with the bi-functional catalyst exhibits a high power density of 249.4 mW cm−2, a strong discharge durability and charge-discharge stability of 240 cycles. Notably, the flexible zinc-air battery also shows good battery performances with high power density and good flexibility. Hence, exploiting efficient bi-functional catalytic materials with excellent ORR and OER performance and assembling flexible devices will improve the development of current zinc-air batteries battery industry.

Highlights

  • To cite this article: Nengneng Xu et al 2020 J

  • MCo2O4 (M = Zn, Fe or Ni) has stronger conductivity and more active sites, showing better ORR/oxygen evolution reaction (OER) performance than pure Co3O4.19,20 Compared with Fe ion and Ni ion, what the replaces Co2+ with

  • In order to explore the physical properties of ZnCo2O4-carbon materials (CNTs)-140/6 catalyst deeply, Transmission electron microscopy (TEM) and HR-TEM were carried out

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Summary

Introduction

To cite this article: Nengneng Xu et al 2020 J. These results further indicate that i) the strong synergy between ZnCo2O4 and CNT; ii) Zn2+ ions insertion greatly accelerated the catalyst activity; iii) CNTs has large specific surface area and excellent electrical conductivity, facilitating the electron transfer.

Results
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