首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Development of hierarchically structured nanosheet arrays of CuMnO2-MnxOy@graphene foam as a nanohybrid electrode material for high-performance asymmetric supercapacitor
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Development of hierarchically structured nanosheet arrays of CuMnO2-MnxOy@graphene foam as a nanohybrid electrode material for high-performance asymmetric supercapacitor

机译:在高性能不对称超级电容器的纳米混合电极材料中,将患者2-Mnxoy @ Graphene泡沫阵列的分层结构化纳米片阵列的开发

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摘要

Transition-metal-based nanomaterials are preferred for electrochemcial supercapacitor applications owing to their low purchasing cost, facile synthesis process and high theoretical electrochemcial performance. However, these materials can not translate their excellent theoretical performance into commendable experimental values. In these circumstances, supercapacitors based on new class of highly conductive and electroactive hybrid nanomaterial are recommended. Herein, for the first time, 2D CuMnO2-MnxOy@graphene foam (GF) hybrid nanomaterial is constructed as a novel electrode material for asymmetric supercapacitor application. The CuMnO2-MnxOy@GF hybrid nanomaterial displays an excellent areal capacitance of 7.82 F cm(-2) at a current density value of 3 mA cm(-2) while it also maintains maximum areal capacitance of 67.51% at 60 mA cm(-2). The CuMnO2-MnxOy@GF hybrid nanomaterial retains a high capacitance of 92.15% after maximum 10,000 cycles. A high-performance asymmetric supercapacitor device is assembled based on CuMnO2-MnxOy@GF and sulfur-nitrogen-codoped graphene nanosheets (SN-GNs) as positive and negative electrode materials, respectively. The CuMnO2-MnxOy@GF//SN-GNs ASC device shows an ultra-high energy density value of 81.4 W h kg(-1) at a minimum power density of 809.5 W kg(-1). The CuMnO2-MnxOy@GFON-GNs ASC device retains a specific capacitance of 88.88% after 10,000 cycles. The CuMnO2MnxOy@GF hybrid nanomaterial is beneficial to promote asymmetric supercapacitor device with an excellent electrochemcial performance. (C) 2020 Elsevier B.V. All rights reserved.
机译:过渡金属基纳米材料由于其低廉的采购成本、简单的合成工艺和较高的理论电化学性能,是电化学超级电容器应用的首选材料。然而,这些材料无法将其优异的理论性能转化为值得称赞的实验值。在这种情况下,推荐使用基于新型高导电和电活性混合纳米材料的超级电容器。在此,2D CuMnO2首次-MnxOy@graphene泡沫(GF)杂化纳米材料是一种用于不对称超级电容器的新型电极材料。卡姆诺2号-MnxOy@GF杂化纳米材料在电流密度为3 mA-cm(-2)时显示出7.82 F-cm(-2)的优良面积电容,同时在60 mA-cm(-2)时保持67.51%的最大面积电容。卡姆诺2号-MnxOy@GF混合纳米材料在最多10000次循环后仍保持92.15%的高电容。基于CuMnO2组装了一种高性能的非对称超级电容器-MnxOy@GF硫氮共掺杂石墨烯纳米片(SN-GNs)分别作为正极和负极材料。卡姆诺2号-MnxOy@GF//SN GNs ASC设备在809.5 W kg(-1)的最小功率密度下显示了81.4 W h kg(-1)的超高能量密度值。卡姆诺2号-MnxOy@GFON-GNs ASC器件在10000次循环后保持88.88%的比电容。这个CuMnO2MnxOy@GF杂化纳米材料有利于促进具有优异电化学性能的不对称超级电容器器件的发展。(C) 2020爱思唯尔B.V.版权所有。

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