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首页> 外文期刊>Nanoscale >Importance of polypyrrole in constructing 3D hierarchical carbon nanotube@MnO2 perfect core-shell nanostructures for high-performance flexible supercapacitors
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Importance of polypyrrole in constructing 3D hierarchical carbon nanotube@MnO2 perfect core-shell nanostructures for high-performance flexible supercapacitors

机译:聚吡咯的重要性在构建3 d分层碳nanotube@MnO2完美核壳纳米结构的高性能柔性超级电容器

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This study reports the preparation of 3D hierarchical carbon nanotube (CNT) @MnO2 core-shell nanostructures under the assistance of polypyrrole (PPy). The as-prepared CNT@PPy@MnO2 core-shell structures show a perfect coating of MnO2 on each CNT and, more importantly, a robust bush-like pseudocapacitive shell to effectively increase the specific surface area and enhance the ion accessibility. As expected, a high specific capacity of 490-530 F g(-1) has been achieved from CNT@PPy@MnO2 single electrodes. And about 98.5% of the capacity is retained after 1000 charge/discharge cycles at a current density of 5 A g(-1). Furthermore, the assembled asymmetric CNT@ PPy@MnO2//AC capacitors show the maximum energy density of 38.42 W h kg(-1) (2.24 mW h cm(-3)) at a power density of 100 W kg(-1) (5.83 mW cm(-3)), and they maintain 59.52% of the initial value at 10 000 W kg(-1) (0.583 W cm(-3)). In addition, the assembled devices show high cycling stabilities (89.7% after 2000 cycles for asymmetric and 87.2% for symmetric), and a high bending stability (64.74% after 200 bending tests). This ability to obtain high energy densities at high power rates while maintaining high cycling stability demonstrates that this well-designed structure could be a promising electrode material for high-performance supercapacitors.
机译:本研究报告3 d的准备分层的碳纳米管(CNT) @MnO2核壳纳米结构的帮助下聚吡咯(PPy)。核壳结构展示一个完美的涂料汇总每个问,更重要的是,一个健壮的灌木状的pseudocapacitive壳有效增加比表面积,提高离子可访问性。特定容量的490 - 530 F (g (1)实现从CNT@PPy@MnO2单一电极。大约98.5%的容量后留存1000充电/放电循环电流密度5 g(1)。不对称CNT@ PPy@MnO2 / / AC电容器显示最大能量密度为38.42千克(1)(2.24 W hmW h厘米(3))100 W的功率密度公斤(1)(5.83 mW厘米(3)),并且维护的59.52%初始值在000 W公斤(1)(0.583 W厘米(3))。高循环稳定性(89.7%,2000年周期非对称和对称)为87.2%,高弯曲稳定性(200年64.74%,弯曲测试)。在高功率密度率,同时保持高循环稳定性证明了这一点精心设计的结构可能是有前途的高性能的电极材料超级电容器。

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