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3D Interconnected Binder-Free Electrospun MnO@C Nanofibers for Supercapacitor Devices

机译:用于超级电容器设备的3D互连无粘合剂静电纺MnO @ C纳米纤维

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摘要

Rational design of binder-free materials with high cyclic stability and high conductivity is a great need for high performance supercapacitors. We demonstrate a facile one-step synthesis method of binder-free MnO@C nanofibers as electrodes for supercapacitor applications. The topology of the fabricated nanofibers was investigated using FESEM and HRTEM. The X-ray photoelectron spectroscopy (XPS) and the X-ray diffraction (XRD) analyses confirm the formation of the MnO structure. The electrospun MnO@C electrodes achieve high specific capacitance of 578 F/g at 1 A/g with an outstanding cycling performance. The electrodes also show 127% capacity increasing after 3000 cycles. An asymmetric supercapacitor composed of activated carbon as the negative electrode and MnO@C as the positive electrode shows an ultrahigh energy density of 35.5 Wh/kg with a power density of 1000 W/kg. The device shows a superior columbic efficiency, cycle life, and capacity retention.
机译:具有高性能,高循环稳定性和高导电性的无粘结剂材料的合理设计是对高性能超级电容器的巨大需求。我们展示了一种无粘结剂的MnO @ C纳米纤维作为超级电容器应用电极的简便的一步合成方法。使用FESEM和HRTEM研究了制成的纳米纤维的拓扑。 X射线光电子能谱(XPS)和X射线衍射(XRD)分析证实了MnO结构的形成。电纺MnO @ C电极在1 atA / g的条件下可实现578 F / g的高比电容,并具有出色的循环性能。电极在3000次循环后还显示出127%的容量增加。由活性炭作为负电极和MnO @ C作为正电极组成的不对称超级电容器,其超高能量密度为35.5 Wh / kg,功率密度为1000 W / kg。该设备显示出卓越的哥伦布效率,循环寿命和容量保持能力。

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