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通过毛细作用压缩氮和硫双掺杂碳纳米笼实现超高体积储能

Achieving Ultrahigh Volumetric Energy Storage by Compressing Nitrogen and Sulfur Dual-Doped Carbon Nanocages via Capillarity.

作者信息

Li Guochang, Mao Kun, Liu Meng, Yan Minglei, Zhao Jie, Zeng Yu, Yang Lijun, Wu Qiang, Wang Xizhang, Hu Zheng

机构信息

Key Laboratory of Mesoscopic Chemistry of MOE and Jiangsu Provincial Laboratory for Nanotechnology, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, China.

出版信息

Adv Mater. 2020 Dec;32(52):e2004632. doi: 10.1002/adma.202004632. Epub 2020 Nov 13.

Abstract

High volumetric performance is a challenging issue for carbon-based electrical double-layer capacitors (EDLCs). Herein, collapsed N,S dual-doped carbon nanocages (cNS-CNC) are constructed by simple capillary compression, which eliminates the surplus meso- and macropores, leading to a much increased density only at the slight expense of specific surface area. The N,S dual-doping induces strong polarity of the carbon surface, and thus much improves the wettability and charge transfer. The synergism of the high density, large ion-accessible surface area, and fast charge transfer leads to state-of-the-art volumetric performance under the premise of high rate capability. At a current density of 50 A g , the optimized cNS-CNC delivers a high volumetric capacitance of 243 and 199 F cm in KOH and EMIMBF electrolyte, with high energy density of 7.9 and 93.4 Wh L , respectively. A top-level stack volumetric energy density of 75.3 Wh L (at power density of 0.7 kW L ) and a maximal stack volumetric power density of 112 kW L (at energy density of 18.8 Wh L ) are achieved in EMIMBF , comparable to the lead-acid battery in energy density but better in power density with 2-3 orders. This study demonstrates an efficient strategy to design carbon-based materials for high-volumetric-performance EDLCs with wide practical applications.

摘要

对于碳基双电层电容器(EDLC)而言,高体积性能是一个具有挑战性的问题。在此,通过简单的毛细管压缩构建了塌陷的N、S双掺杂碳纳米笼(cNS-CNC),它消除了多余的中孔和大孔,仅以略微牺牲比表面积为代价,使密度大幅增加。N、S双掺杂使碳表面具有强极性,从而大大提高了润湿性和电荷转移。在高倍率性能的前提下,高密度、大离子可及表面积和快速电荷转移的协同作用带来了一流的体积性能。在50 A g的电流密度下,优化后的cNS-CNC在KOH和EMIMBF电解质中分别具有243和199 F cm的高体积电容,能量密度分别为7.9和93.4 Wh L。在EMIMBF中实现了75.3 Wh L的顶级堆叠体积能量密度(在功率密度为0.7 kW L时)和112 kW L的最大堆叠体积功率密度(在能量密度为18.8 Wh L时),在能量密度方面与铅酸电池相当,但在功率密度方面比其高2-3个数量级。本研究展示了一种设计用于高体积性能EDLC的碳基材料的有效策略,具有广泛的实际应用。

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