阳极
复合数
材料科学
碳纤维
电导率
钾
扩散
氧化物
化学工程
兴奋剂
氧化钴
碱金属
钴
扩散阻挡层
电极
纳米技术
复合材料
图层(电子)
光电子学
化学
冶金
物理化学
有机化学
热力学
物理
工程类
作者
David Adekoya,Hao Chen,Hui Ying Hoh,Tim Gould,Muhammad‐Sadeeq Balogun,Chao Lai,Huijun Zhao,Shanqing Zhang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2020-03-20
卷期号:14 (4): 5027-5035
被引量:145
标识
DOI:10.1021/acsnano.0c01395
摘要
Cobalt oxide (Co3O4) delivers a poor capacity when applied in large-sized alkali metal-ion systems such as potassium-ion batteries (KIBs). Our density functional theory calculation suggests that this is due to poor conductivity, high diffusion barrier, and weak potassium interaction. N-doped carbon can effectively attract potassium ions, improve conductivity, and reduce diffusion barriers. Through interface engineering, the properties of Co3O4 can be tuned via composite design. Herein, a Co3O4@N-doped carbon composite was designed as an advanced anode for KIBs. Due to the interfacial design of the composite, K+ were effectively transported through the Co3O4@N-C composite via multiple ionic pathways. The structural design of the composite facilitated increased Co3O4 spacing, a nitrogen-doped carbon layer reduced K-ion diffusion barrier, and improved conductivity and protected the electrode from damage. Based on the entire composite, a superior capacity of 448.7 mAh/g was delivered at 50 mA/g after 40 cycles, and moreover, 213 mAh/g was retained after 740 cycles when cycled at 500 mA/g. This performance exceeds that of most metal-oxide-based KIB anodes reported in literature.
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