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基于层状双氢氧化物的电化学电容器材料的最新进展:设计、合成与性能。

Recent progress in layered double hydroxide based materials for electrochemical capacitors: design, synthesis and performance.

机构信息

School of Chemistry and Chemical Engineering, Institute for Innovative Materials and Energy, Yangzhou University, Yangzhou, 225009, Jiangsu, P. R. China.

出版信息

Nanoscale. 2017 Oct 19;9(40):15206-15225. doi: 10.1039/c7nr04752e.

Abstract

As representative two-dimensional (2D) materials, layered double hydroxides (LDHs) have received increasing attention in electrochemical energy storage and conversion because of the facile tunability between their composition and morphology. The high dispersion of active species in layered arrays, the simple exfoliation into monolayer nanosheets and chemical modification offer the LDHs an opportunity as active electrode materials in electrochemical capacitors (ECs). LDHs are favourable in providing large specific surface areas, good transport features as well as attractive physicochemical properties. In this review, our purpose is to provide a detailed summary of recent developments in the synthesis and electrochemical performance of the LDHs. Their composites with carbon (carbon quantum dots, carbon black, carbon nanotubes/nanofibers, graphene/graphene oxides), metals (nickel, platinum, silver), metal oxides (TiO, CoO, CuO, MnO, FeO), metal sulfides/phosphides (CoS, NiCoS, NiP), MOFs (MOF derivatives) and polymers (PEDOT:PSS, PPy (polypyrrole), P(NIPAM-co-SPMA) and PET) are also discussed in this review. The relationship between structures and electrochemical properties as well as the associated charge-storage mechanisms is discussed. Moreover, challenges and prospects of the LDHs for high-performance ECs are presented. This review sheds light on the sustainable development of ECs with LDH based electrode materials.

摘要

作为代表性的二维(2D)材料,层状双氢氧化物(LDHs)由于其组成和形态之间的易调变性,在电化学储能和转换领域受到越来越多的关注。活性物质在层状阵列中的高分散性、单层纳米片的简单剥离和化学修饰为 LDHs 作为电化学电容器(ECs)的活性电极材料提供了机会。LDHs 具有提供大比表面积、良好传输特性和有吸引力的物理化学性质的优势。在这篇综述中,我们的目的是详细总结 LDHs 的合成和电化学性能的最新进展。还讨论了它们与碳(碳量子点、炭黑、碳纳米管/纳米纤维、石墨烯/氧化石墨烯)、金属(镍、铂、银)、金属氧化物(TiO、CoO、CuO、MnO、FeO)、金属硫化物/磷化物(CoS、NiCoS、NiP)、MOFs(MOF 衍生物)和聚合物(PEDOT:PSS、PPy(聚吡咯)、P(NIPAM-co-SPMA)和 PET)的复合材料。讨论了结构与电化学性能之间的关系以及相关的电荷存储机制。此外,还提出了 LDHs 在高性能 ECs 方面面临的挑战和展望。这篇综述为基于 LDH 的电极材料的 ECs 的可持续发展提供了思路。

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