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分层纳米结构 MoO2/Co(OH)2 的协同效应,极大地提高了赝电容循环稳定性。

Synergistic effect of hierarchical nanostructured MoO2/Co(OH)2 with largely enhanced pseudocapacitor cyclability.

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, WUT-Harvard Joint Nano Key Laboratory, Wuhan University of Technology , Wuhan 430070, China.

出版信息

Nano Lett. 2013;13(11):5685-91. doi: 10.1021/nl403372n. Epub 2013 Oct 28.

Abstract

Pseudocapacitors have demonstrated an ability to deliver high energy and power densities. The main limitation is their poor cyclability and for this reason the architectural design of electrode materials has attracted considerable attention. Here we report the synthesis of hierarchical nanostructured material by growing Co(OH)2 nanoflakes onto MoO2 thin film. The electrode material exhibits a high capacitance of 800 F g(-1) at 20 A g(-1) with only 3% capacitance loss after 5000 cycles and high rate capability with increasing current density from 2 to 40 A g(-1), which are better than those of individual component. The enhanced pseudocapacitor performances benefit from the synergistic effect of the hierarchical nanostructure: (1) faster ion diffusion and electron transport at electrode/electrolyte interface, and (2) mitigation of the electrode destruction caused by ion insertion/deinsertion during charge-storage process. This facile design and rational synthesis offers an effective strategy to enhance the electrochemical performance of pseudocapacitors and shows promising potential for large-scale application in energy storage.

摘要

赝电容器具有提供高能量和功率密度的能力。主要限制是其循环性能差,因此电极材料的结构设计引起了相当大的关注。在这里,我们报告了通过在 MoO2 薄膜上生长 Co(OH)2 纳米片来合成分级纳米结构材料。该电极材料在 20 A g-1 时表现出 800 F g-1 的高电容,经过 5000 次循环后仅有 3%的电容损失,并且具有高倍率性能,随着电流密度从 2 增加到 40 A g-1,其性能优于单个组件。赝电容器性能的增强得益于分级纳米结构的协同效应:(1)在电极/电解质界面处更快的离子扩散和电子传输,以及(2)缓解了在电荷存储过程中离子插入/脱插引起的电极破坏。这种简单的设计和合理的合成为增强赝电容器的电化学性能提供了一种有效的策略,并显示出在储能方面大规模应用的广阔前景。

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