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溶液处理的石墨烯/MnO2 纳米结构纺织品,用于高性能电化学电容器。

Solution-processed graphene/MnO2 nanostructured textiles for high-performance electrochemical capacitors.

机构信息

Department of Chemical Engineering, Stanford University, Stanford, California 94305, United States.

出版信息

Nano Lett. 2011 Jul 13;11(7):2905-11. doi: 10.1021/nl2013828. Epub 2011 Jun 13.

DOI:10.1021/nl2013828
PMID:21667923
Abstract

Large scale energy storage system with low cost, high power, and long cycle life is crucial for addressing the energy problem when connected with renewable energy production. To realize grid-scale applications of the energy storage devices, there remain several key issues including the development of low-cost, high-performance materials that are environmentally friendly and compatible with low-temperature and large-scale processing. In this report, we demonstrate that solution-exfoliated graphene nanosheets (∼5 nm thickness) can be conformably coated from solution on three-dimensional, porous textiles support structures for high loading of active electrode materials and to facilitate the access of electrolytes to those materials. With further controlled electrodeposition of pseudocapacitive MnO(2) nanomaterials, the hybrid graphene/MnO(2)-based textile yields high-capacitance performance with specific capacitance up to 315 F/g achieved. Moreover, we have successfully fabricated asymmetric electrochemical capacitors with graphene/MnO(2)-textile as the positive electrode and single-walled carbon nanotubes (SWNTs)-textile as the negative electrode in an aqueous Na(2)SO(4) electrolyte solution. These devices exhibit promising characteristics with a maximum power density of 110 kW/kg, an energy density of 12.5 Wh/kg, and excellent cycling performance of ∼95% capacitance retention over 5000 cycles. Such low-cost, high-performance energy textiles based on solution-processed graphene/MnO(2) hierarchical nanostructures offer great promise in large-scale energy storage device applications.

摘要

具有低成本、高功率和长循环寿命的大规模储能系统对于解决可再生能源生产中连接时的能源问题至关重要。为了实现储能器件的电网规模应用,仍然存在几个关键问题,包括开发低成本、高性能的材料,这些材料必须是环保的,并且与低温和大规模加工兼容。在本报告中,我们证明了溶液剥离的石墨烯纳米片(约 5nm 厚)可以从溶液中在三维多孔纺织品支撑结构上进行一致的涂层,以实现高负载的活性电极材料和促进电解质对这些材料的接触。通过进一步控制伪电容 MnO(2)纳米材料的电沉积,混合的石墨烯/MnO(2)基纺织品具有高达 315 F/g 的高电容性能。此外,我们已经成功地在水性 Na(2)SO(4)电解质溶液中使用石墨烯/MnO(2)-纺织品作为正极和单壁碳纳米管(SWNTs)-纺织品作为负极来制造非对称电化学电容器。这些器件具有有希望的特性,最大功率密度为 110kW/kg,能量密度为 12.5Wh/kg,并且在 5000 次循环中具有约 95%的电容保持率的出色循环性能。基于溶液处理的石墨烯/MnO(2)分级纳米结构的这种低成本、高性能的能量纺织品在大规模储能器件应用中具有巨大的应用前景。

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