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Hydrothermally derived three-dimensional porous hollow double-walle d Mn2O3 nanocub es as superior electrode materials for supercapacitor applications

机译:水热源衍生的三维多孔中空双瓦尔D MN2O3纳米核酸作为超级电容器应用的优质电极材料

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Although Mn2O3 has been widely used as an electrode material for lithium-ion batteries, it has not been explored as a supercapacitor electrode material due to its low specific area, irregular morphology, low porosity, and low ionic conductivity. Targeting this gap, in this study, we attempted to develop regular and porous hollow double-walled Mn2O3 cubes, which can simultaneously provide a large surface area and enhance charge diffusion to result in a high capacitance. We synthesized cube-like 3D hierarchically porous double-walled Mn2O3 (c-HDW-Mn2O3) using a simple hydrothermal method followed by calcination. The optimized electrode material c-HDW-Mn2O3@9 exhibited excellent capacitance and 90% retention over 3000 consecutive charge-discharge cycles at a fixed current density. Such high performance and good stability can be attributed to the porous and crystalline structure and high surface area of the optimized electrode. Finally, these hierarchically porous nanocubes can be considered as suitable materials for energy-storage applications. (c) 2020 Published by Elsevier Ltd.
机译:尽管Mn2O3已被广泛用作锂离子电池的电极材料,但由于其特异性面积,不规则形态,低孔隙率和低离子导电性,因此尚未被探索为超级电容器电极材料。在本研究中瞄准这种差距,我们试图开发定期和多孔空心双壁MN2O3立方体,其可以同时提供大的表面积并增强电荷扩散以导致高电容。我们使用简单的水热法合成立方体样3D分层多孔双壁MN2O3(C-HDW-MN2O3),然后进行煅烧。优化的电极材料C-HDW-MN2O3 @ 9在固定电流密度下表现出优异的电容和90%在3000多个连续电荷放电循环上保持。这种高性能和良好的稳定性可归因于多孔和晶体结构和优化电极的高表面积。最后,这些分层多孔纳米孔可以被认为是用于能量储存应用的合适材料。 (c)2020由elestvier有限公司发布

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