Construction of MnO2 Nanowire for a High-Performance Lithium Ion Supercapacitor

Wenbo Wang, Yanhong Shi, Yangfen Su, Yihai Wang, Haizhu Sun
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引用次数: 2

Abstract

Developing lithium ion capacitors possessing both brilliant energy and power density is still significant for numerous re-searchers. In this paper, we synthesized MnO2 nanowires via a simple hydrothermal process. The nanostructure MnO2 can expose more electrochemical sites and thus optimize the kinetics of Li+. Moreover, we used MnO2 nanowires (MnO2 NWs) as anode and a N-doped porous carbon (NPC) as cathode to assemble lithium ion capacitors (MnO2 NWs//NPC LIC). Compared to the traditional supercapacitor with aqueous electrolyte, the MnO2 NWs//NPC LIC exhibits a wider voltage of 0-4.2 V, which is helpful to enhance its energy and power density. Furthermore, MnO2 NWs//NPC LIC can deliver an excellent capacity of 150 mAh g-1 with an excellent energy density of 82.7 Wh kg-1 and power density of 1.05 kW kg-1. Meanwhile, a good cyclic stability of LICs with a 20% retention after 1000 times charge and discharge process proves its practical potential, indicating a good promising for the application in storage devices.
高性能锂离子超级电容器用二氧化锰纳米线的构建
开发能量和功率密度都很高的锂离子电容器对许多研究人员来说仍然具有重要意义。本文采用简单的水热法合成了二氧化锰纳米线。纳米结构MnO2可以暴露更多的电化学位点,从而优化Li+的动力学。此外,我们以二氧化锰纳米线(MnO2 NWs)为阳极,氮掺杂多孔碳(NPC)为阴极组装锂离子电容器(MnO2 NWs//NPC LIC)。与传统的水电解质超级电容器相比,MnO2 NWs//NPC LIC具有更宽的0-4.2 V电压,有助于提高其能量和功率密度。此外,MnO2 NWs//NPC LIC可提供150mah g-1的优异容量,能量密度为82.7 Wh kg-1,功率密度为1.05 kW kg-1。同时,在1000次充放电过程中,锂离子电池具有良好的循环稳定性和20%的保留率,证明了其应用潜力,在存储器件中具有良好的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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