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Regulating non-precious transition metal nitrides bifunctional electrocatalysts through surface/interface nanoengineering for air-cathodes of Zn-air batteries

双功能 材料科学 纳米工程 氮化物 化学工程 纳米技术 腐蚀 电催化剂 催化作用 化学稳定性 析氧 阴极 电化学 电极 化学 冶金 图层(电子) 物理化学 工程类 生物化学
作者
Qixing Du,Yanmei Gong,Muhammad Arif Khan,Daixin Ye,Jianhui Fang,Hongbin Zhao,Jiujun Zhang
出处
期刊:Green Energy & Environment [KeAi]
卷期号:7 (1): 16-34 被引量:53
标识
DOI:10.1016/j.gee.2021.01.018
摘要

Zn-air batteries (ZABs), especially the secondary batteries, have engrossed a great interest because of its high specific energy, economical and high safety. However, due to the insufficient activity and stability of bifunctional electrocatalysts for air-cathode oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) processes, the practical application of rechargeable ZABs is seriously hindered. In the effort of developing high active, stable and cost-effective electrocatalysts, transition metal nitrides (TMNs) have been regarded as the candidates due to their high conductivity, strong corrosion-resistance, and bifunctional catalytic performance. In this paper, the research progress in TMNs-based material as ORR and OER electrocatalysts for ZABs is discussed with respect to their synthesis, chemical/physical characterization, and performance validation/optimization. The surface/interface nanoengineering strategies such as defect engineering, support binding, heteroatom introduction, crystal plane orientation, interface construction and small size effect, the physical and chemical properties of TMNs-based electrocatalysts are emphasized with respect to their structures/morphologies, composition, electrical conductivity, specific surface area, chemical stability and corrosion resistance. The challenges of TMNs-based materials as bifunctional air-cathode electrocatalysts in practical application are evaluated, and numerous research guidelines to solve these problems are put forward for facilitating further research and development.
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