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Fast Ionic Diffusion-Enabled Nanoflake Electrode by Spontaneous Electrochemical Pre-Intercalation for High-Performance Supercapacitor

机译:通过自发电化学预嵌入快速离子扩散使能纳米薄片电极以用于高性能超级电容器

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摘要

Layered intercalation compounds NaxMnO2 (x = 0.7 and 0.91) nanoflakes have been prepared directly through wet electrochemical process with Na+ ions intercalated into MnO2 interlayers spontaneously. The as-prepared NaxMnO2 nanoflake based supercapacitors exhibit faster ionic diffusion with enhanced redox peaks, tenfold-higher energy densities up to 110 Wh·kg−1 and higher capacitances over 1000 F·g−1 in aqueous sodium system compared with traditional MnO2 supercapacitors. Due to the free-standing electrode structure and suitable crystal structure, NaxMnO2 nanoflake electrodes also maintain outstanding electrochemical stability with capacitance retention up to 99.9% after 1000 cycles. Besides, pre-intercalation effect is further studied to explain this enhanced electrochemical performance. This study indicates that the suitable pre-intercalation is effective to improve the diffusion of electrolyte cations and other electrochemical performance for layered oxides, and suggests that the as-obtained nanoflakes are promising materials to achieve the hybridization of both high energy and power density for advanced supercapacitors.
机译:通过湿电化学法直接将Na + 离子自发插入MnO2中间层中,直接制备了层状插入化合物NaxMnO2(x = 0.7和0.91)纳米薄片。制备的基于NaxMnO2纳米片的超级电容器表现出更快的离子扩散和增强的氧化还原峰,高达110 Wh·kg -1 的十倍更高的能量密度和超过1000 F·g -1的更高的电容在钠水溶液中与传统的MnO2超级电容器相比。由于具有独立式的电极结构和合适的晶体结构,NaxMnO2纳米片状电极还保持了出色的电化学稳定性,经过1000次循环后电容保持率高达99.9%。此外,进一步研究了预插层效应以解释这种增强的电化学性能。这项研究表明,合适的预插层可以有效地改善电解质阳离子的扩散以及层状氧化物的其他电化学性能,并表明所获得的纳米薄片是有望实现高能量和高功率密度混合的先进材料。超级电容器。

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