材料科学
电容
电容器
硼
电化学
多孔性
兴奋剂
电解质
化学气相沉积
电流密度
化学工程
复合材料
纳米技术
光电子学
电极
电气工程
电压
化学
有机化学
物理化学
物理
工程类
量子力学
作者
Bin Chen,Nan Huang,Zhaofeng Zhai,Chuyan Zhang,Lusheng Liu,Yang Bing,Xin Jiang
出处
期刊:Small
[Wiley]
日期:2024-01-31
卷期号:20 (28): e2310523-e2310523
被引量:5
标识
DOI:10.1002/smll.202310523
摘要
Abstract Electrochemical capacitors (ECs) show great perspective in alternate current (AC) filtering once they simultaneously reach ultra‐fast response and high capacitance density. Nevertheless, the structure‐design criteria of the two key properties are often mutually incompatible in electrode construction. Herein, it is proposed that combining vertically oriented porous carbon with enhanced interfacial capacitance ( C i ) can efficiently solve this issue. Theoretically, the density function theory calculation shows that the C i of a carbon electrode can be enhanced by boron doping due to the corresponding compact induced charge layer. Experimentally, the vertical‐oriented boron‐doped graphene nanowalls (BGNWs) electrodes, whose C i is enhanced from 4.20 to 10.16 µF cm −2 upon boron doping, are prepared on a large scale (480 cm 2 ) using a hot‐filament chemical vapor deposition technique (HFCVD). Owing to the high C i and vertically oriented porous structure, BGNWs‐based EC has a high capacitance density of 996 µF cm −2 with a phase angle of − 79.4° at 120 Hz in aqueous electrolyte and a high energy density of 1953 µFV 2 cm −2 in organic electrolyte. As a result, the EC is capable of smoothing 120 Hz ripples for 60 Hz AC filtering. These results provide enlightening insights on designing high‐performance ECs for high‐frequency applications.
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