超级电容器
材料科学
石墨烯
储能
阴极
电容
电极
聚吡咯
功率密度
纳米技术
电容感应
光电子学
聚合
复合材料
聚合物
功率(物理)
电气工程
化学
量子力学
物理
工程类
物理化学
作者
Guangzhi Yang,Jiangqi Zhou,Zhenwang Zhang,Yuanzhe Song,Wei Li,Zhihong Chen,Weiqing Chu,Jinshuo Chen,Yuhua Xue,Chengxin Peng,Wei Tang
标识
DOI:10.1016/j.jallcom.2022.168447
摘要
Hybrid supercapacitors, inheriting the merits from supercapacitors and batteries, exhibit promise in energy storage technologies. However, they are bottlenecked by the sluggish diffusion, low mass loading and inadequate energy density. Herein, three-dimensional vertical orientation graphene-polypyrrole thick electrode ([email protected]) with vertically-aligned channels and three-dimensional conductive networks prepared via in-situ gas phase polymerization is proposed for high-energy-power zinc-ion hybrid supercapacitors to efficiently mitigate these issues. Based on the “dual-ion” storage mechanism, and associated with the multiple synergy of short mass/charge transfer pathway, fast kinetics and enhanced electroactivity endowed by the structurally engineering of thick electrode, even at the high active mass-loading (8.4 mg cm-2), the Zn-based hybrid energy devices with [email protected] 3DVAG-70 as cathode electrode exhibits intriguing capacitive performances, including exceptional high areal capacitance of 927 mF cm-2, good rate performance (53% at current density of 15 mA cm-2) and excellent areal energy/power density of 360.4 μWh cm-2 and 10.125 mW cm-2. The presented results highlight the facile and efficient approach for structural engineering the active cathode material, significantly contributing to the rapid development of eco-friendly and scalable Zn-based hybrid energy devices.
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