超级电容器
材料科学
制作
电容
电极
电导率
价(化学)
纳米技术
化学工程
比表面积
电化学
晶体结构
纳米针
氧化物
化学
纳米结构
结晶学
催化作用
冶金
医学
生物化学
替代医学
有机化学
物理化学
病理
工程类
作者
Yuchen Wang,Yaoyu Liu,A. Ahsan Ejaz,Kai Yan
标识
DOI:10.1016/j.cclet.2022.05.052
摘要
The supercapacitive properties of manganese oxides (MnOx) are strongly affected by their crystal structure. Nevertheless, the relationship between the crystal structure and supercapacitive performance of MnOx is elusive. Herein, a temperature-controlled fabrication method was developed to achieve MnO2, Mn3O4, MnO and Mn2O3 microspheres with various crystal structure as electrode materials tunable for supercapacitors. The detailed material and electrochemical characterizations revealed the structure-activity relationship of MnOx microspheres by systematically investigating the effect of valence state, specific surface area, conductivity and morphology on supercapacitive performance. Among these MnOx materials, nanoneedle-like MnO2 delivered a relatively high specific capacitance of 274.1 F/g at 1 A/g due to a high Mn valence state of +4, a large specific surface area of 113.4 m2/g and a desirable electronic conductivity of 1.73 × 10–5 S/cm. Furthermore, MnO2 presented a remarkable cycle stability with 115% capacitance retention after 10,000 cycles owing to the enhancement of wettability. This work not only provides a facile strategy to modulate MnOx crystal structure, but also offers a deep understanding of structure-dependent supercapacitive performance of MnOx.
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