Back to Search Start Over

Composing atomic transition metal sites for high-performance bifunctional oxygen electrocatalysis in rechargeable zinc–air batteries

Authors :
Wang, Juan
Zhao, Chang-Xin
Liu, Jia-Ning
Ren, Ding
Ma, Xinzhi
Li, Bo-Quan
Huang, Jia-Qi
Zhang, Qiang
Source :
Particuology; June 2023, Vol. 77 Issue: 1 p146-152, 7p
Publication Year :
2023

Abstract

Rechargeable zinc–air batteries have attracted extensive attention as clean, safe, and high-efficient energy storage devices. However, the oxygen redox reactions at cathode are highly sluggish in kinetics and severely limit the actual battery performance. Atomic transition metal sites demonstrate high electrocatalytic activity towards respective oxygen reduction and evolution, while high bifunctional electrocatalytic activity is seldomly achieved. Herein a strategy of composing atomic transition metal sites is proposed to fabricate high active bifunctional oxygen electrocatalysts and high-performance rechargeable zinc–air batteries. Concretely, atomic Fe and Ni sites are composed based on their respective high electrocatalytic activity on oxygen reduction and evolution. The composite electrocatalyst demonstrates high bifunctional electrocatalytic activity (ΔE = 0.72 V) and exceeds noble-metal-based Pt/C + Ir/C (ΔE = 0.79 V). Accordingly, rechargeable zinc–air batteries with the composite electrocatalyst realize over 100 stable cycles at 25 mA cm−2. This work affords an effective strategy to fabricate bifunctional oxygen electrocatalysts for high-performance rechargeable zinc–air batteries.

Details

Language :
English
ISSN :
16742001
Volume :
77
Issue :
1
Database :
Supplemental Index
Journal :
Particuology
Publication Type :
Periodical
Accession number :
ejs61608739
Full Text :
https://doi.org/10.1016/j.partic.2022.09.003