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Interlinked multiphase Fe-doped MnO2 nanostructures: a novel design for enhanced pseudocapacitive performance

机译:相互关联的多相Fe-doped汇总为增强纳米结构:一种新颖的设计pseudocapacitive性能

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摘要

Structure designing and morphology control can lead to high performance pseudocapacitive materials for supercapacitors. In this work, we have designed interlinked multiphase Fe-doped MnO2 nano-structures (alpha-MnO2/R-MnO2/e-MnO2) to enhance the electrochemical properties by a facile method. These hierarchical hollow microspheres assembled by interconnected nanoflakes, and with plenty of porous nanorods radiating from the spherical shells were hydrothermally obtained. The supercapacitor electrode prepared from the unique construction exhibits outstanding specific capacitance of 267.0 F g(-1) even under a high mass loading (similar to 5 mg cm(-2)). Obviously improved performances compared to pure MnO2 are also demonstrated with a good rate capability, high energy density (1.30 mW h cm(-3)) and excellent cycling stability of 100% capacitance retention after 2000 cycles at 2 A g(-1). The synergistic effects of alternative crystal structures, appropriate crystallinity and optimal morphology are identified to be responsible for the observations. This rational multiphase composite strategy provides a promising idea for materials scientists to design and prepare scalable electrode materials for energy storage devices.
机译:结构设计和形态控制导致高性能pseudocapacitive超级电容器的材料。设计了相通的多相Fe-doped吗增强的电化学性能灵巧的方法。微球组装通过互联nanoflakes,大量的多孔纳米棒球壳的辐射热水地。电极准备从独特的建筑展览突出特定的电容267.0 g F(1)即使在高质量负载(类似于5毫克厘米(2))。表演比纯粹的汇总也展示了良好的速度能力,高能量密度(1.30 mW h厘米(3))和优秀的自行车电容保留100%的稳定2000个周期后2 g(1)。替代的晶体结构的影响,适当的结晶度和最佳形态确定负责观察。战略提供了一个有前途的材料科学家们设计和可扩展做好准备电极材料的储能设备。

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