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用于改善赝电容存储的三明治结构CoO@C@PPy电极的构建。

The construction of a sandwich structured CoO@C@PPy electrode for improving pseudocapacitive storage.

作者信息

Guo Di, Zhang Mingyue, Chen Zhi, Liu Xiao-Xia

机构信息

Department of Chemistry, Northeastern University Shenyang 110819 China

School of Materials Science and Engineering, Nanchang Hangkong University Nanchang 330063 China

出版信息

RSC Adv. 2018 Sep 27;8(58):33374-33382. doi: 10.1039/c8ra07032f. eCollection 2018 Sep 24.

Abstract

Sandwich structured hybrids consisting of a CoO nanowire as the core, amorphous carbon (C) as the inner shell and a polypyrrole (PPy) outer layer as the exodermis are synthesized a hydrothermal method and constant current electropolymerization. The formation mechanism and growth stage of PPy on carbon surfaces is investigated and it was discovered that PPy layer thickness, corresponding to nucleation time of the polymer, as the dynamic factor, can influence the pseudocapacitive properties of the obtained composites. The carbon layer acts as both a network to increase the electric conductivity and a buffer agent to reduce volume expansion of CoO during ion insertion/extraction to achieve higher capacitance and better cyclic stability. So for a capacitor, the CoO@C@PPy electrode delivers a higher areal capacitance of 2.71 F cm at 10 mA cm (1663 F g at 6.1 A g) and improved rate capability compared to CoO and CoO@C. An asymmetric device is assembled by the CoO@C@PPy hybrids as a cathode and a relatively high energy density of 63.64 W h kg at a power density of 0.54 kW kg is obtained, demonstrating that the sandwich structured CoO@C@PPy hybrids have enormous potential for high-performance pseudocapacitors.

摘要

通过水热法和恒流电聚合合成了一种三明治结构的杂化材料,其核心为CoO纳米线,内壳为非晶碳(C),外层为聚吡咯(PPy)外皮。研究了PPy在碳表面的形成机理和生长阶段,发现作为动态因素的PPy层厚度(对应于聚合物的成核时间)会影响所得复合材料的赝电容性能。碳层既作为提高电导率的网络,又作为缓冲剂,在离子插入/脱出过程中减少CoO的体积膨胀,以实现更高的电容和更好的循环稳定性。因此,对于一个电容器,CoO@C@PPy电极在10 mA cm时提供了2.71 F cm的更高面积电容(在6.1 A g时为1663 F g),并且与CoO和CoO@C相比具有更好的倍率性能。以CoO@C@PPy杂化材料为阴极组装了一个不对称器件,在功率密度为0.54 kW kg时获得了63.64 W h kg的相对较高的能量密度,表明三明治结构的CoO@C@PPy杂化材料在高性能赝电容器方面具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4202/9086461/510f8fd4e249/c8ra07032f-f1.jpg

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