首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >alpha-MnO2 nanotube@delta-MnO2 nanoflake hierarchical structure on three-dimensional graphene foam as a lightweight and free-standing supercapacitor electrode
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alpha-MnO2 nanotube@delta-MnO2 nanoflake hierarchical structure on three-dimensional graphene foam as a lightweight and free-standing supercapacitor electrode

机译:Alpha-MnO2纳米管@ Delta-MnO2纳米铝饼在三维石墨烯泡沫上作为轻质和独立式超级电容电极的分层结构

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摘要

Three-dimensional graphene foam (3D GF) is one of the promising candidates due to its fascinating characteristics. In the paper, we reported a simple hydrothermal method to fabricate hierarchical alpha-MnO2 nanotube@delta-MnO2 nanoflake on GF (GF@MNT@MNF) as a lightweight and free-standing electrode of supercapacitor. The 3D GF could serve as an ideal supporter to grow MnO2 active material, and MnO2 mass percentage affects significantly on the electrochemical properties of the composite electrode. When the mass percentage of MnO2 is 60%, a maximum specific capacitance of 202 F.g(-1) with respect to the entire electrode and 336 F.g(-1) relative to active material is achieved. The GF@MNT@MNF electrode presents a remarkable cyclic stability (maintaining about 97% of original capacitance over 5000 cycles). The excellent electrochemical performance of the GF@MNT@MNF electrode is resulted from the combination of the lightweight, flexible, conductive GFs and MnO2 hierarchical structure with large contacting interface and proper space distribution. Furthermore, an asymmetric supercapacitor based on GF@MNT@MNF composites was assembled, which showed a great energy density of 23.2 Wh.kg(-1) under a power density of 119.9 W.kg(-1) in wide potential range of 0-1.8 V. The research may provide a method for lightweight, freestanding and high-performance electrode material for efficient and convenient energy storage device. (C) 2021 Elsevier B.V. All rights reserved.
机译:三维石墨烯泡沫塑料(3D GF)因其迷人的特性而成为最有前途的候选材料之一。在本文中,我们报道了一种简单的水热法制备分级α-MnO2的方法nanotube@delta-玻璃纤维上的二氧化锰纳米片(GF@MNT@MNF)作为超级电容器的轻质独立电极。3D-GF可以作为生长MnO2活性材料的理想载体,MnO2质量分数对复合电极的电化学性能有显著影响。当MnO2的质量百分比为60%时,相对于整个电极的最大比电容为202 F.g(-1),相对于活性材料的最大比电容为336 F.g(-1)。这个GF@MNT@MNF电极具有显著的循环稳定性(在5000次循环中保持约97%的初始电容)。其优异的电化学性能GF@MNT@MNF电极是由轻质、柔性、导电的GFs和MnO2分层结构结合而成,具有大的接触界面和适当的空间分布。此外,还设计了一种基于GF@MNT@组装了MNF复合材料,其能量密度高达23.2wh。在0-1.8V的宽电位范围内,功率密度为119.9W.kg(-1)。本研究可为高效便捷的储能装置提供一种轻质、独立、高性能的电极材料。(c)2021爱思唯尔B.V.保留所有权利。

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