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高堆积密度垂直排列石墨烯的各向异性阵列,具有增强的面电容,可用于高功率微型超级电容器。

High Packing Density Unidirectional Arrays of Vertically Aligned Graphene with Enhanced Areal Capacitance for High-Power Micro-Supercapacitors.

机构信息

University of Chinese Academy of Sciences , 19 A Yuquan Road, Shijingshan District, Beijing 100049, People's Republic of China.

Research & Development Center for Functional Crystals, Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences , P.O. Box 603, Beijing 100190, People's Republic of China.

出版信息

ACS Nano. 2017 Apr 25;11(4):4009-4016. doi: 10.1021/acsnano.7b00553. Epub 2017 Mar 28.

DOI:10.1021/acsnano.7b00553
PMID:28333440
Abstract

Interfacial integration of a shape-engineered electrode with a strongly bonded current collector is the key for minimizing both ionic and electronic resistance and then developing high-power supercapacitors. Herein, we demonstrated the construction of high-power micro-supercapacitors (VG-MSCs) based on high-density unidirectional arrays of vertically aligned graphene (VG) nanosheets, derived from a thermally decomposed SiC substrate. The as-grown VG arrays showed a standing basal plane orientation grown on a (0001̅) SiC substrate, tailored thickness (3.5-28 μm), high-density structurally ordering alignment of graphene consisting of 1-5 layers, vertically oriented edges, open intersheet channels, high electrical conductivity (192 S cm), and strong bonding of the VG edges to the SiC substrate. As a result, the demonstrated VG-MSCs displayed a high areal capacitance of ∼7.3 mF cm and a fast frequency response with a short time constant of 9 ms. Furthermore, VG-MSCs in both an aqueous polymer gel electrolyte and nonaqueous ionic liquid of 1-ethyl-3-methylimidazolium tetrafluoroborate operated well at high scan rates of up to 200 V s. More importantly, VG-MSCs offered a high power density of ∼15 W cm in gel electrolyte and ∼61 W cm in ionic liquid. Therefore, this strategy of producing high-density unidirectional VG nanosheets directly bonded on a SiC current collector demonstrated the feasibility of manufacturing high-power compact supercapacitors.

摘要

界面整合具有强结合力集流器的异形电极是最小化离子和电子电阻并开发高功率超级电容器的关键。本文通过在热分解 SiC 衬底上生长的垂直排列石墨烯(VG)纳米片高密度单向阵列,构建了基于高功率微超级电容器(VG-MSCs)。所生长的 VG 阵列表现出站立基面取向,生长在(0001̅)SiC 衬底上,具有可调厚度(3.5-28 μm)、由 1-5 层组成的高浓度结构有序石墨烯、垂直取向的边缘、开放的层间通道、高电导率(192 S cm)和 VG 边缘与 SiC 衬底的强键合。结果,所展示的 VG-MSCs 具有约 7.3 mF cm 的高面积电容和快速频率响应,时间常数短至 9 ms。此外,在高达 200 V s 的高扫描速率下,在水性聚合物凝胶电解质和非水离子液体 1-乙基-3-甲基咪唑四氟硼酸盐中的 VG-MSCs 都能良好运行。更重要的是,VG-MSCs 在凝胶电解质中提供了约 15 W cm 的高功率密度,在离子液体中提供了约 61 W cm 的高功率密度。因此,这种在 SiC 集流器上直接生长高密度单向 VG 纳米片的策略证明了制造高功率紧凑型超级电容器的可行性。

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