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具有有序大介孔的聚吡咯纳米线:合成、表征及其在超级电容器和锂/硫电池中的应用

Polypyrrole Nanowires with Ordered Large Mesopores: Synthesis, Characterization and Applications in Supercapacitor and Lithium/Sulfur Batteries.

作者信息

Yin Fuxing, Ren Jun, Wu Guoyan, Zhang Chengwei, Zhang Yongguang

机构信息

School of Materials Science & Engineering and Research Institute for Energy Equipment Materials, Hebei University of Technology, Tianjin 300130, China.

Tianjin key laboratory of materials laminating fabrication and interface control technology, Hebei University of Technology, Tianjin 300130, China.

出版信息

Polymers (Basel). 2019 Feb 7;11(2):277. doi: 10.3390/polym11020277.

Abstract

In this work, we report the preparation of polypyrrole nanowires with ordered large mesopores (OMPW) by a simple chemical polymerization method from dual templates synthesized by self-assembling silica nanospheres in porous anodic aluminum oxide (AAO) membrane channels. The obtained OMPW showed a large surface area (231.5 m² g), high aspect ratio, and interconnected large mesopores (~23 nm). The OMPW was tested as a supercapacitor electrode and showed a specific capacitance of 453 F g at 0.25 A g. A sulfur/OMPW (S/OMPW) cathode was fabricated via a simple solution method and a heat-treatment process for lithium/sulfur batteries (LSBs). The S/OMPW composite delivered a large discharge capacity reaching 1601 mAh g at the initial cycle, retaining 1014 mAh g at the 100th cycle at 0.1 C. The great electrochemical performances of the OMPW capacitor electrode and S/OMPW composite were attributed to the large specific surface areas and interconnected mesopores that could supply more active sites for the electrochemical reaction and facilitate mass transfer.

摘要

在本工作中,我们报道了通过一种简单的化学聚合法,以在多孔阳极氧化铝(AAO)膜通道中自组装二氧化硅纳米球合成的双模板制备具有有序大孔的聚吡咯纳米线(OMPW)。所获得的OMPW具有大表面积(231.5 m² g)、高纵横比和相互连接的大孔(约23 nm)。将OMPW作为超级电容器电极进行测试,在0.25 A g时显示出453 F g 的比电容。通过简单的溶液法和热处理工艺制备了用于锂硫电池(LSB)的硫/OMPW(S/OMPW)阴极。S/OMPW复合材料在初始循环时具有高达1601 mAh g的大放电容量,在0.1 C下第100次循环时保持1014 mAh g。OMPW电容器电极和S/OMPW复合材料优异的电化学性能归因于大的比表面积和相互连接的介孔,它们可为电化学反应提供更多活性位点并促进传质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c932/6419019/f70a96160389/polymers-11-00277-g001.jpg

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