聚吡咯
材料科学
超级电容器
电容
纳米技术
金属有机骨架
导电体
纳米线
导电聚合物
混合材料
电解质
电极
储能
聚合物
电化学
复合材料
有机化学
聚合
功率(物理)
吸附
物理化学
物理
化学
量子力学
作者
Ruizuo Hou,Mao Miao,Qingyong Wang,Ting Yue,Hongfang Liu,Ho Seok Park,Kai Qi,Bao Yu Xia
标识
DOI:10.1002/aenm.201901892
摘要
Abstract Metal–organic frameworks (MOFs) with intrinsically porous structures are promising candidates for energy storage, however, their low electrical conductivity limits their electrochemical energy storage applications. Herein, the hybrid architecture of intrinsically conductive Cu‐MOF nanowire arrays on self‐supported polypyrrole (PPy) membrane is reported for integrated flexible supercapacitor (SC) electrodes without any inactive additives, binders, or substrates involved. The conductive Cu‐MOFs nanowire arrays afford high conductivity and a sufficiently active surface area for the accessibility of electrolyte, whereas the PPy membrane provides decent mechanical flexibility, efficient charge transfer skeleton, and extra capacitance. The all‐solid‐state flexible SC using integrated hybrid electrode demonstrates an exceptional areal capacitance of 252.1 mF cm −2 , an energy density of 22.4 µWh cm −2 , and a power density of 1.1 mW cm −2 , accompanied by an excellent cycle capability and mechanical flexibility over a wide range of working temperatures. This work not only presents a robust and flexible electrode for wide temperature range operating SC but also offers valuable concepts with regards to designing MOF‐based hybrid materials for energy storage and conversion systems.
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