材料科学
双功能
原子层沉积
锌
图层(电子)
Boosting(机器学习)
沉积(地质)
化学工程
纳米技术
冶金
催化作用
有机化学
计算机科学
化学
古生物学
机器学习
沉积物
工程类
生物
作者
Fang Dong,Zhangsen Chen,Ning Chen,Gaixia Zhang,Shuhui Sun
标识
DOI:10.1002/aenm.202502074
摘要
Abstract The integration of transition metal‐carbon composites has shown remarkable potential in achieving superior bifunctional electrocatalytic activity and robust stability in rechargeable zinc‐air batteries (ZABs), primarily through electronic structure modulation and strategic structural design. While significant research is dedicated to the initial structure and performance of bifunctional electrocatalysts for rechargeable ZABs, their dynamic evolution during charge–discharge cycling remains underexplored. In this study, CoFe nanoparticles are encapsulated within carbon nanotubes co‐doped with nitrogen and phosphorus (NPC) to mitigate dissolution and erosion risks. Further, the catalyst surface (CoFe‐NPC) is precisely modified with a thin layer of nickel oxide (NiO) via atomic layer deposition (ALD), forming a protective layer with catalytic activity. The resulting ALD‐modified catalyst, CoFe‐NPC@NiO, exhibits outstanding bifunctional performance (Δ E = 0.592 V) for the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER). Notably, the liquid flow ZAB using the CoFe‐NPC@NiO cathode demonstrates exceptional rechargeable stability (2700 h, ≈4 months). Theoretical calculations and in situ X‐ray absorption spectroscopy (XAS) analyses reveal that NiO modification significantly enhances both the catalytic activity and stability of the electrocatalyst. This work will provide valuable insights into the design of advanced electrocatalysts, facilitating advancements in activity enhancement, stability improvement, and selectivity optimization.
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