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理解孔径对MXene泡沫材料电化学电容性能的影响。

Understanding the Effect of Pore Size on Electrochemical Capacitive Performance of MXene Foams.

作者信息

Lv Ke, Zhang Jizhen, Zhao Xu, Kong Na, Tao Jinlong, Zhou Ji

机构信息

Hubei Collaborative Innovation Center for Advanced Organic Chemical Materials & Ministry of Education Key Laboratory for the Synthesis and Application of Organic Functional Molecules & College of Chemistry and Chemical Engineering, Hubei University, Wuhan, 430062, China.

Guangdong Provincial Key Laboratory of Natural Rubber Processing, Agricultural Products Processing Research Institute, Chinese Academy of Tropical Agricultural Sciences, Zhanjiang, 524001, China.

出版信息

Small. 2022 Jul;18(27):e2202203. doi: 10.1002/smll.202202203. Epub 2022 Jun 9.

DOI:10.1002/smll.202202203
PMID:35678527
Abstract

Wearable electronics demand energy storage devices with high energy density and fast charging-discharging rates. Although various porous electrodes have been constructed, the effect of pore size on the capacitive performance of 2D nanomaterials has been rarely studied. Herein, flexible MXene foams with significantly different pore structures are fabricated using varying diameter polystyrene (PS) spheres (80, 310, and 570 nm), which shows uniform pores and interconnected pores providing enough active sites and a good electrical connection for electron transfer. Noteworthy, when MXene flakes and templates (310 nm) have a similar size, the foam delivers the highest gravimetric capacitance of 474 ± 12 F g at 2 mV s than others. Additionally, the mass ratio between MXene and PS controls the packing density of foams influencing the inner resistance of foam electrodes. A carbon nanotube is introduced to further improve the electrical conductivity of foams to achieve a capacitance of 462 ± 8 F g at 2 mV s and retains 205 ± 10 F g at 1000 mV s , demonstrating promises in energy storage applications and providing an insightful guidance for designing 2D nanomaterials-based porous electrodes for supercapacitors.

摘要

可穿戴电子产品需要具有高能量密度和快速充放电速率的储能设备。尽管已经构建了各种多孔电极,但孔径对二维纳米材料电容性能的影响却鲜有研究。在此,使用不同直径的聚苯乙烯(PS)球体(80、310和570纳米)制备了具有显著不同孔结构的柔性MXene泡沫,其显示出均匀的孔和相互连通的孔,为电子转移提供了足够的活性位点和良好的电连接。值得注意的是,当MXene薄片和模板(310纳米)尺寸相似时,该泡沫在2 mV s下的比电容最高,为474±12 F g ,高于其他泡沫。此外,MXene与PS之间的质量比控制着泡沫的堆积密度,影响着泡沫电极的内阻。引入碳纳米管以进一步提高泡沫的电导率,在2 mV s下实现了462±8 F g的电容,在1000 mV s下保持205±10 F g ,这表明其在储能应用中有前景,并为设计基于二维纳米材料的超级电容器多孔电极提供了有见地的指导。

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