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首页> 外文期刊>Chemical engineering journal >Hierarchical NiMn-layered double hydroxides@CuO core-shell heterostructure in-situ generated on Cu(OH)(2) nanorod arrays for high performance supercapacitors
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Hierarchical NiMn-layered double hydroxides@CuO core-shell heterostructure in-situ generated on Cu(OH)(2) nanorod arrays for high performance supercapacitors

机译:分层NIMN层层双氢氧化物@ CUO核 - 壳异质结构原位,在Cu(OH)(2)纳米棒阵列中,用于高性能超级电容器

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Supercapacitors are attracting tremendous research interest because they are expected to achieve battery-level energy density while having long calendar life and short charging time. Ultrathin layered double hydroxide nanosheets (LDHs) are promising candidates as electrode materials for energy storage. Herein, we have successfully designed and synthesized a hierarchical NiMn-LDH@CuO/CF core-shell heterostructure which comprises a vertical and intercrossing ultrathin NiMn-LDHs nanosheets shell and a slightly curly and tops tangled CuO nanowires core. The synthesized NiMn-LDH@CuO/CF electrode exhibits a high areal capacitance of 6077 mF cm(-2) (2430.8 F g(-1)) at a current density of 2 mA cm(-2) (0.8 A g(-1)), which is significant higher than those of CF, Cu(OH)(2)/CF, CuO/CF, NiMn-LDH/CF and NiMn-LDH electrodes. Moreover, a superior cycling stability of 89.22% retention after 8000 cycles at a high current density of 50 mA cm(-2) is observed and a low internal resistance R-s (0.584 Omega) can be achieved. Furthermore, an all solid-state asymmetric supercapacitor (ASC) device based on the as-synthesized hierarchical NiMn-LDH@CuO/CF core-shell heterostructure hybrid material as positive electrode and activated carbon as negative electrode is successfully fabricated and exhibits an energy density of 10.8 W h kg(-1) at a power density of 100 W kg(-1). Additionally, a LED indicator can be lit up for eight minutes when three ASCs are connected in series. The excellent electrochemical performances can be credited to the significant enhancement of the specific surface area, charge transport and mechanical stability resulted from the ultrathin LDH shell, the highly conducive CuO nanowires core-shell nanostructure. This strategy for the fabrication of hierarchical core-shell heterostructure could have enormous potential for applications in high performance energy storage devices.
机译:超级电容器吸引了巨大的研究兴趣,因为它们有望实现电池级能量密度,同时长期日历寿命和短的充电时间。超薄层状双氢氧化物纳米片(LDHS)是希望候选物作为能量储存的电极材料。在此,我们已经成功地设计和合成了分层NiMn-LDH @ CuO / CF核壳异质结构,其包括垂直和间隙Ultharin NiMn-LDHS纳米晶片和略微卷曲,顶部缠结CuO纳米线芯。合成的NIMN-LDH @ CUO / CF电极在电流密度为2 mA cm(-2)(0.8Ag( - 1)),其显着高于CF,Cu(OH)(2)/ CF,CuO / CF,NiMn-LDH / CF和NIMN-LDH电极。此外,观察到在8000mAcm(-2)的高电流密度的8000次循环后89.22%保留的优异循环稳定性,并且可以实现低内阻R-S(0.584ω)。此外,基于AS合成的分层NIMN-LDH @ CUO / CF核 - 壳异质结构杂化材料作为正极和活性炭作为负电极的所有固态不对称超微电容器(ASC)器件被成功制造,并且具有能量密度10.8 W H kg(-1)的功率密度为100 w kg(-1)。此外,当三个ASC串联连接时,LED指示灯可以点亮八分钟。优异的电化学性能可以归因于特定表面积的显着增强,从超薄LDH壳引起的电荷传输和机械稳定性,高于电气的CuO纳米线核心 - 壳纳米结构。制造分层核心壳异质结构的这种策略可以具有高性能能量存储装置中的应用的巨大潜力。

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