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由镍钴层状双氢氧化物纳米片组装而成的用于高性能混合超级电容器的分级纳米笼

Hierarchical Nanocages Assembled by NiCo-Layered Double Hydroxide Nanosheets for a High-Performance Hybrid Supercapacitor.

作者信息

Zhao Xiang, Li Hui, Zhang Mu, Pan Wei, Luo Zhengtang, Sun Xudong

机构信息

Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education), School of Materials Science and Engineering, Northeastern University, Shenyang 110819, PR China.

Foshan Graduate School of Northeastern University, Foshan 528311, PR China.

出版信息

ACS Appl Mater Interfaces. 2022 Aug 3;14(30):34781-34792. doi: 10.1021/acsami.2c08903. Epub 2022 Jul 22.

Abstract

Layered double hydroxides (LDHs) have attracted broad attention as cathode materials for hybrid supercapacitors (HSCs) because of their ultrahigh theoretical specific capacitance, high compositional flexibility, and adjustable interlayer spacing. However, as reported, specific capacitance of LDHs is still far below the theoretical value, inspiring countless efforts to these ongoing challenges. Herein, a hierarchical nanocage structure assembled by NiCo-LDH nanosheet arrays was rationally designed and fabricated via a facile solvothermal method assisted by the ZIF-67 template. The transformation from the ZIF-67 template to this hollow structure is achieved by a synergistic effect involving the Kirkendall effect and the Ostwald ripening process. The enlarged specific surface area co-occurred with broadened interlayer spacing of LDH nanosheets by finely increasing the Ni concentration, leading to synchronous improvement of electron/ion transfer kinetics. The optimized NiCo-LDH-210 electrode displays a maximum specific capacitance of 2203.6 F g at 2 A g, excellent rate capability, and satisfactory cycling stability because of the highly exposed active sites and shortened ion transport paths provided by vertically aligned LDH nanosheets together with the cavity. Furthermore, the assembled HSC device achieves a superior energy density of 57.3 Wh kg with prominent cycling stability. Impressively, the design concept of complex construction derived from metal-organic frameworks (MOF) derivatives shows tremendous potential for use in energy storage systems.

摘要

层状双氢氧化物(LDHs)作为混合超级电容器(HSCs)的阴极材料受到了广泛关注,因为它们具有超高的理论比电容、高组成灵活性和可调节的层间距。然而,据报道,LDHs的比电容仍远低于理论值,这激发了人们为应对这些持续挑战做出无数努力。在此,通过ZIF-67模板辅助的简便溶剂热法,合理设计并制备了由NiCo-LDH纳米片阵列组装而成的分级纳米笼结构。从ZIF-67模板到这种中空结构的转变是通过涉及柯肯达尔效应和奥斯特瓦尔德熟化过程的协同效应实现的。通过精细增加Ni浓度,比表面积增大的同时LDH纳米片的层间距也变宽,从而导致电子/离子转移动力学同步改善。优化后的NiCo-LDH-210电极在2 A g时显示出2203.6 F g的最大比电容、优异的倍率性能和令人满意的循环稳定性,这是由于垂直排列的LDH纳米片与空腔提供了高度暴露的活性位点和缩短的离子传输路径。此外,组装的HSC器件实现了57.3 Wh kg的优异能量密度和出色的循环稳定性。令人印象深刻的是,源自金属有机框架(MOF)衍生物的复杂结构设计概念在储能系统中显示出巨大的应用潜力。

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