超级电容器
石墨烯
氟
材料科学
兴奋剂
氯
纳米技术
表面改性
电荷(物理)
能量密度
曲面(拓扑)
化学工程
表面电荷
表面能
光电子学
电极
电容
工程物理
化学
复合材料
冶金
物理化学
工程类
物理
几何学
数学
量子力学
作者
Binbin Liu,Jiagang Hou,Kai Wang,Caixia Xu,Qian Zhang,Chen Xu,Weijia Zhou,Qian Li,John Wang,Hong Liu
标识
DOI:10.1002/advs.202402033
摘要
Settling the structure stacking of graphene (G) nanosheets to maintain the high dispersity has been an intense issue to facilitate their practical application in the microelectronics-related devices. Herein, the co-doping of the highest electronegative fluorine (F) and large atomic radius chlorine (Cl) into G via a one-step electrochemical exfoliation protocol is engineered to actualize the ultralong cycling stability for flexible micro-supercapacitors (MSCs). Density functional theoretical calculations unveiled that the F into G can form the "ionic" C─F bond to increase the repulsive force between nanosheets, and the introduction of Cl can enlarge the layer spacing of G as well as increase active sites by accumulating the charge on pore defects. The co-doping of F and Cl generates the strong synergy to achieve high reversible capacitance and sturdy structure stability for G. The as-constructed aqueous gel-based MSC exhibited the superb cycling stability for 500,000 cycles with no capacitance loss and structure stacking. Furthermore, the ionic liquid gel-based MSC demonstrated a high energy density of 113.9 mW h cm
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