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设计精良的三明治状CC@NiAl-LDH@GO@NiCo-LDH材料结构,对高性能和实用性混合准固态超级电容器具有独特优势。

Well-designed sophisticated structure of sandwich-like CC@NiAl-LDH@GO@NiCo-LDH material with unique advantages for high performance and practicality hybrid quasi-solid-state supercapacitors.

作者信息

Wang Yan, Lu Jiatong, Zhao Yang, Lv Huifang, Zhou Zhiyu, Wei Hualiang, Chen Zexiang

机构信息

School of Optoelectronic Science and Engineering of UESTC, University of Electronic Science and Technology of China, Jianshe North Road 4, Chengdu 610054, China; Sichuan Province Key Laboratory of Display Science and Technology, Jianshe North Road 4, Chengdu 610054, China.

School of Optoelectronic Science and Engineering of UESTC, University of Electronic Science and Technology of China, Jianshe North Road 4, Chengdu 610054, China; Sichuan Province Key Laboratory of Display Science and Technology, Jianshe North Road 4, Chengdu 610054, China.

出版信息

J Colloid Interface Sci. 2022 Mar;609:114-129. doi: 10.1016/j.jcis.2021.11.128. Epub 2021 Dec 1.

DOI:10.1016/j.jcis.2021.11.128
PMID:34894546
Abstract

A sandwich-like flexible architecture electrode material composed of NiAl-LDH nanoplates grown on carbon cloths (CC), coupled with GO interlayer and NiCo-LDH nanowire on the interlayer was successfully assembled via hydrothermal and chemical bath deposition (denoted as CC@NiAl-LDH@GO@NiCo-LDH). The promising combination of NiAl-LDH, graphene and NiCo-LDH forming a multilayer structure through electrostatic absorption and in-situ growth process which endow a high mass loading superiority and synergistic effect for supercapacitors. In addition, the interspace inside the sandwich-like architecture constructed by the graphene and the NiAl-LDH/ NiCo-LDH nano-flakes contribute to alleviate of the volume expansion during the cycling process and promote the diffusion rate of ions. The CC@NiAl-LDH@GO@NiCo-LDH material demonstrates excellent electrochemical performance which exhibit remarkable specific capacitance of 2359.8F·g (14.2F·cm) at 1 A·g (6 mA·cm) and outstanding capacitance retentions of 93.1% after 1500 cycles. Subsequently, the CC@NiAl-LDH@GO@NiCo-LDH material was used as cathode material to fabricate a hybrid quasi-solid-state supercapacitor that exhibits a high energy density of 52.0 Wh·kg at 796.7 W·kg and 38.4 Wh·kg at 12015 W·kg, revealing its potential and viability for commercial applications. Furthermore, the hybrid quasi-solid-state supercapacitor can be applied under different extreme operating conditions such as bending, twisting, sour/alkali soaking, ice bathing, warm bathing, hammering and cutting conditions. It is predictable that the unique sandwich-like structure will be an extremely promising electrode material for high-performance supercapacitors.

摘要

通过水热法和化学浴沉积成功组装了一种三明治状柔性结构电极材料,该材料由生长在碳布(CC)上的NiAl-LDH纳米片组成,中间层为GO,层间为NiCo-LDH纳米线(表示为CC@NiAl-LDH@GO@NiCo-LDH)。NiAl-LDH、石墨烯和NiCo-LDH通过静电吸附和原位生长过程形成多层结构的有前景的组合,赋予超级电容器高质量负载优势和协同效应。此外,由石墨烯和NiAl-LDH/NiCo-LDH纳米片构建的三明治状结构内部的间隙有助于减轻循环过程中的体积膨胀并提高离子扩散速率。CC@NiAl-LDH@GO@NiCo-LDH材料表现出优异的电化学性能,在1 A·g(6 mA·cm)时具有2359.8F·g(14.2F·cm)的显著比电容,在1500次循环后具有93.1%的出色电容保持率。随后,CC@NiAl-LDH@GO@NiCo-LDH材料用作阴极材料制备了一种混合准固态超级电容器,该超级电容器在796.7 W·kg时具有52.0 Wh·kg的高能量密度,在12015 W·kg时具有38.4 Wh·kg的高能量密度,揭示了其商业应用的潜力和可行性。此外,混合准固态超级电容器可以在不同的极端操作条件下应用,如弯曲、扭曲、酸碱浸泡、冰浴、温水浴、锤击和切割条件。可以预见,独特的三明治状结构将是一种极具前景的高性能超级电容器电极材料。

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引用本文的文献

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