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三维石墨烯基大孔和介孔框架用于高性能电化学电容储能。

Three-dimensional graphene-based macro- and mesoporous frameworks for high-performance electrochemical capacitive energy storage.

机构信息

Max-Planck-Institut für Polymerforschung, Ackermannweg 10, 55128 Mainz, Germany.

出版信息

J Am Chem Soc. 2012 Dec 5;134(48):19532-5. doi: 10.1021/ja308676h. Epub 2012 Nov 20.

Abstract

Three-dimensional graphene-based frameworks (3D-GFs) with hierarchical macro- and meso-porous structures are presented. The interconnected macropores are derived from hydrothermally assembled 3D graphene aerogels (GAs), while the mesopores are generated by the silica networks uniformly grown on the surface of graphene. The resulting 3D-GFs exhibit narrow mesopore size distribution (2-3.5 nm), high surface area, and low mass density. These intriguing features render 3D-GFs a promising template for creating various 3D porous materials. Specifically, 3D GA-based mesoporous carbons (GA-MC) and metal oxide hybrids (GA-Co(3)O(4), GA-RuO(2)) can be successfully constructed via a nanocasting technology. Benefiting from the integration of meso- and macroporous structures, 3D GA-MC manifests outstanding specific capacitance (226 F g(-1)), high rate capability, and excellent cycling stability (no capacitance loss after 5000 cycles) when it is applied in electrochemical capacitors.

摘要

本文提出了具有分级宏观和介孔结构的三维石墨烯基框架(3D-GFs)。相互连接的大孔源自水热组装的三维石墨烯气凝胶(GA),而介孔则是由均匀生长在石墨烯表面的二氧化硅网络产生的。所得到的 3D-GFs 具有窄的介孔尺寸分布(2-3.5nm)、高比表面积和低质量密度。这些有趣的特性使得 3D-GFs 成为构建各种 3D 多孔材料的有前途的模板。具体而言,通过纳米铸造技术可以成功构建基于 3DGA 的介孔碳(GA-MC)和金属氧化物杂化物(GA-Co(3)O(4)、GA-RuO(2))。得益于介孔和大孔结构的集成,当 3DGA-MC 应用于电化学电容器时,表现出出色的比电容(226Fg(-1))、高倍率性能和优异的循环稳定性(5000 次循环后无电容损失)。

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