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Optimized spherical manganese oxideferroferric oxide-tin oxide ternary composites as advanced electrode materials for supercapacitors

机译:优化的球形氧化锰铁氧化铁-氧化锡三元复合材料作为超级电容器的高级电极材料

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摘要

Inexpensive MnO2 is a promising material for supercapacitors (SCs), but its application is limited by poor electrical conductivity and low specific surface area. We design and fabricate hierarchical MnO2-based ternary composite nanostructures showing superior electrochemical performance via doping with electrochemically active Fe3O4 in the interior and electrically conductive SnO2 nanoparticles in the surface layer. Optimization composition results in a MnO2-Fe3O4-SnO2 composite electrode material with 5.9 wt.% Fe3O4 and 5.3 wt.% SnO2, leading to a high specific areal capacitance of 1.12 F cm(-2) at a scan rate of 5 mV s(-1). This is two to three times the values for MnO2-based binary nanostructures at the same scan rate. The low amount of SnO2 almost doubles the capacitance of porous MnO2-Fe3O4 (before SnO2 addition), which is attributed to an improved conductivity and remaining porosity. In addition, the optimal ternary composite has a good rate capability and an excellent cycling performance with stable capacitance retention of similar to 90% after 5000 charge/discharge cycles at 7.5 mA cm(-2). All-solid-state SCs are assembled with such electrodes using polyvinyl alcohol/Na2SO4 electrolyte. An integrated device made by connecting two identical SCs in series can power a light-emitting diode indicator for more than 10 min.
机译:廉价的MnO2是一种用于超级电容器(SCs)的有前途的材料,但其应用受到电导率低和比表面积低的限制。我们设计和制造基于MnO2的三元复合纳米结构,通过掺杂内部具有电化学活性的Fe3O4和表面层具有导电性的SnO2纳米颗粒来显示优异的电化学性能。优化的成分导致MnO2-Fe3O4-SnO2复合电极材料具有5.9 wt。%的Fe3O4和5.3 wt。%的SnO2,在5 mV s的扫描速率下导致1.12 F cm(-2)的高比电容( -1)。这是在相同扫描速率下基于MnO2的二元纳米结构的值的2至3倍。少量的SnO2几乎使多孔MnO2-Fe3O4的电容(在SnO2添加之前)增加一倍,这归因于提高的电导率和剩余孔隙率。此外,最佳的三元复合材料具有良好的倍率性能和出色的循环性能,在7.5 mA cm(-2)下进行5000次充电/放电循环后,其稳定的电容保持率接近90%。使用聚乙烯醇/ Na2SO4电解质将全固态SC与此类电极组装在一起。通过串联连接两个相同的SC制成的集成设备可以为发光二极管指示器供电10分钟以上。

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