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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >3D self-supporting heterostructure NiCo-LDH/ZnO/CC electrode for flexible high-performance supercapacitor
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3D self-supporting heterostructure NiCo-LDH/ZnO/CC electrode for flexible high-performance supercapacitor

机译:3D自支撑异质结构Nico-LDH / ZnO / CC电极,适用于柔性高性能超级电容器

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摘要

Two kinds of nanostructured ZnO, namely nanorods (ZnO NR) and nanoflakes (ZnO NF) were first prepared on conductive flexible carbon cloth (CC) by a hydrothermal route. Then nickel cobalt layered double hydroxide (NiCo-LDH) nanoflakes were directly hydrothermally deposited on them to construct three-dimensional (3D) self-supporting heterostructure NiCo-LDH/ZnO NR/CC and NiCo-LDH/ZnO NF/CC flexible electrodes. The effects of different nanostructured ZnO on morphology, structure and electrochemical performance of NiCo-LDH/ZnO/CC composite materials were investigated. It is found that NiCo-LDH nanoflakes grown on ZnO NF/CC substrate are more compact and uniform than those on ZnO NR/CC substrate. Moreover, NiCo-LDH/ZnO NF/CC electrode presents better electrochemical properties than NiCo-LDH/ZnO NR/CC electrode with 2.6 times higher specific capacitance (1577.6 F g(-1) at 1 Ag-1), 2.2 times better rate capability, and 1.5 time greater cycle stability, which may be attributed to the larger contact area and more redox-active sites provided by the NiCo-LDH NFs grown on ZnO NFs. Furthermore, the as-assembled solid-state flexible NiCo-LDH/ZnO NF//AC (active carbon) asymmetric supercapacitor (ASC) delivers a maximal energy density of 51.39 Wh kg(-1) (800 W kg(-1)) with a high operating window of 1.6 V, and exhibits great cyclic stability with 87.3% capacitance retaining after 1000 cycles, which is higher than many reported ASCs. Finally, two packaged ASCs in series successfully lighted a red light-emitting diode (LED, 2.2 V/20 mA), evincing the potentiality of practical application. (C) 2020 Elsevier B.V. All rights reserved.
机译:首次采用水热法在导电柔性碳布(CC)上制备了两种纳米结构的ZnO,即纳米棒(ZnO NR)和纳米薄片(ZnO NF)。然后将镍钴层状双氢氧化物(NiCo-LDH)纳米片直接水热沉积在其上,构建三维(3D)自支撑异质结构NiCo-LDH/ZnO-NR/CC和NiCo-LDH/ZnO-NF/CC柔性电极。研究了不同纳米结构ZnO对NiCo-LDH/ZnO/CC复合材料形貌、结构和电化学性能的影响。研究发现,在ZnO-NF/CC衬底上生长的NiCo-LDH纳米片比在ZnO-NR/CC衬底上生长的NiCo-LDH纳米片更致密、更均匀。此外,NiCo-LDH/ZnO-NF/CC电极比NiCo-LDH/ZnO-NR/CC电极具有更好的电化学性能,比电容(1577.6 F g(-1)在1 Ag-1时高2.6倍,速率性能好2.2倍,循环稳定性高1.5倍,这可能是由于在ZnO-NFs上生长的NiCo-LDH-NFs提供了更大的接触面积和更多的氧化还原活性位点。此外,组装后的固态柔性NiCo-LDH/ZnO NF//AC(活性炭)非对称超级电容器(ASC)的最大能量密度为51.39 Wh-kg(-1)(800 W-kg(-1)),高工作窗口为1.6 V,并且在1000次循环后保持了87.3%的电容,表现出良好的循环稳定性,高于许多已报道的ASC。最后,两个串联封装的ASC成功地点亮了一个红色发光二极管(LED,2.2V/20mA),显示了实际应用的潜力。(C) 2020爱思唯尔B.V.版权所有。

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