材料科学
纳米孔
纳米孔
电极
纳米技术
电容
超级电容器
硫化钴
电化学
储能
纳米复合材料
多孔性
数码产品
离子键合
柔性电子器件
扩散
光电子学
3d打印
导电体
可穿戴技术
镍
离子
钴
印刷电子产品
集电器
作者
MengLong Xie,XiaoLin Zhu,Z.Y. Xu,Zengming Man,Chao Yang,Heng Dong,Guan Wu
摘要
ABSTRACT 3D printed micro‐supercapacitors have attracted unprecedented attention in the fields of wearable electronics and Internet of Things devices. However, the conventional electrode materials generally suffer from limited porous structure and insufficient active sites, resulting in low specific capacitance and restricted practical application. In this work, we report a 3D printed micro‐supercapacitor based on a heterostructured COF@MOF‐Ti 3 C 2 T x electrode material, which features an engineered nanoporous structure and high electrochemical activity. Due to the precise control of hierarchical nanopores and active cobalt and nickel metal sites, enhanced redox activity, the COF@MOF‐Ti 3 C 2 T x electrode material has fast ion diffusion kinetics, high ion adsorption energy, excellent electron conductivity, and large pseudocapacitive reversibility. As a result, COF@MOF‐Ti 3 C 2 T x achieves a high capacitance of 1078.0 F g −1 , a lower ionic diffusion impedance and structural stability. Furthermore, the assembled solid‐state micro‐supercapacitor exhibits an energy density of 60.3 µWh cm −2 and cyclic stability for successfully powering intelligent traffic signals and alarm clocks, which provides a new approach for the development of high‐performance and customizable micro‐energy storage systems.
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