超级电容器
材料科学
电容
纳米片
电极
复合数
石墨烯
功率密度
纳米技术
氧化物
退火(玻璃)
电化学
化学工程
比表面积
电流密度
储能
热液循环
电导率
纳米材料
光电子学
电阻率和电导率
金属
结构稳定性
水热合成
比能量
作者
Xu Zhang,Heng Xiang,Cheng Heng Pang,Keyu Zhao,Zhongli Zou,Kui Cheng
标识
DOI:10.1002/batt.202500291
摘要
The development of flexible energy‐storage devices is limited by the poor conductivity, limited cycling stability, and slow electron/ion transport of metal oxides. Optimizing their structure and performance is crucial for advancing these technologies. Herein, a hollow cubic core–shell Co 3 O 4 @MnO 2 is synthesized via annealing and hydrothermal approaches. This composite enjoys advantages of the high electrical conductivity of Co 3 O 4 and the excellent pseudocapacitive properties of MnO 2 ; in addition, the hollow structure of the composite effectively mitigates the mechanical stress caused by volume changes during charge–discharge cycles. Owing to its large specific surface area and stable framework, Co 3 O 4 @MnO 2 achieves a high specific capacitance of 670.2 F g −1 and retains 83.18% of its initial capacitance after 10,000 cycles, demonstrating exceptional electrochemical stability and durability. Subsequently, an all‐solid‐state flexible supercapacitor was assembled using Co 3 O 4 @MnO 2 positive electrode and a negative electrode made of reduced graphene oxide hydrogel. The device achieves a high energy density of 78.2 W h kg −1 and a power density of 11,500 W kg −1 . Further, even after 10,000 charge–discharge cycles, it retained 73.1% of its initial capacitance, demonstrating potential for flexible energy‐storage applications. This article highlights the advantages of Co 3 O 4 @MnO 2 in enhancing supercapacitor performance and offers insights for cost‐effective cobalt‐based energy‐storage systems.
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