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原位聚合 PAN 辅助 S/C 纳米球作为锂/硫电池正极,具有增强的高功率性能。

In Situ Polymerized PAN-Assisted S/C Nanosphere with Enhanced High-Power Performance as Cathode for Lithium/Sulfur Batteries.

机构信息

Institute of Nanoscience and Nanotechnology, College of Physical Science and Technology, Central China Normal University, Wuhan 430079, P. R. China.

出版信息

Nano Lett. 2015 Aug 12;15(8):5116-23. doi: 10.1021/acs.nanolett.5b01294. Epub 2015 Jul 22.

Abstract

Carbonaceous and polymer materials are extensively employed as conductor and container to encapsulate sulfur particles and limit polysulfide dissolution. Even so, high-power performance is still far from satisfaction due to the expansion and collapse of the electrode materials during thousands of charge-discharge process. Herein, it is found that colloidal carbon sphere with high elastic coefficient can be utilized as a framework to load sulfur, which can trap soluble polysulfides species in the pores within the sphere and efficaciously improve the electronic conductivity of the cathode. After modified by polyaniline (PAN) through in situ polymerization, PAN-assisted S/C nanosphere (PSCs-73, with 73 wt % sulfur) effectively minimize polysulfide diffusion, enhance the electron transfer rate and overcome the problem of volume expansion. The fabricated PSCs-73 cell shows outstanding long high-power cycling capability over 2500 charge/discharge cycles with a capacity decay of 0.01% per cycle at 5 C. Substantially, this composite can drive 2.28 W white indicators of LED robustly after minutes of charging by three lithium batteries in series, showing a promising potential application in the future.

摘要

碳质和聚合物材料被广泛用作导体和容器,以封装硫颗粒并限制多硫化物的溶解。即便如此,由于数千次充放电过程中电极材料的膨胀和收缩,高功率性能仍远未达到满意的水平。在这里,人们发现具有高弹性系数的胶体碳球可用作负载硫的骨架,它可以在球内的孔中捕获可溶性多硫化物物种,并有效地提高阴极的电子导电性。通过原位聚合用聚苯胺(PAN)进行改性后,聚苯胺辅助的 S/C 纳米球(PSCs-73,含 73wt%的硫)有效减少了多硫化物的扩散,提高了电子转移速率,并克服了体积膨胀的问题。所制备的 PSCs-73 电池在 5 C 下经过 2500 多次充放电循环后,具有出色的长高功率循环能力,其容量衰减率为 0.01%/循环。实际上,这种复合材料在串联三个锂电池充电几分钟后,就可以驱动 2.28 W 的白色 LED 指示灯,这显示出其在未来具有广阔的应用前景。

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