JOURNAL ARTICLE

High Performance Carbon Nanotube Yarn Supercapacitors with a Surface-Oxidized Copper Current Collector

Daohong ZhangYunlong WuTing LiYin HuangAiqing ZhangMenghe Miao

Year: 2015 Journal:   ACS Applied Materials & Interfaces Vol: 7 (46)Pages: 25835-25842   Publisher: American Chemical Society

Abstract

Threadlike linear supercapacitors have demonstrated high potential for constructing fabrics to power electronic textiles (eTextiles). To improve the cyclic electrochemical performance and to produce power fabrics large enough for practical applications, a current collector has been introduced into the linear supercapcitors to transport charges produced by active materials along the length of the supercapacitor with high efficiency. Here, we first screened six candidate metal filaments (Pt, Au, Ag, AuAg, PtCu, and Cu) as current collectors for carbon nanotube (CNT) yarn-based linear supercapacitors. Although all of the metal filaments significantly improved the electrochemical performance of the linear supercapacitor, two supercapacitors constructed from Cu and PtCu filaments, respectively, demonstrate far better electrochemical performance than the other four supercapacitors. Further investigation shows that the surfaces of the two Cu-containing filaments are oxidized by the surrounding polymer electrolyte in the electrode. While the unoxidized core of the Cu-containing filaments remains highly conductive and functions as a current collector, the resulting CuO on the surface is an electrochemically active material. The linear supercapacitor architecture incorporating dual active materials CNT + Cu extends the potential window from 1.0 to 1.4 V, leading to significant improvement to the energy density and power density.

Keywords:
Supercapacitor Materials science Current collector Carbon nanotube Electrolyte Electrochemistry Copper Current density Electrode Nanotechnology Linear density Power density Electrical conductor Composite material Chemical engineering Power (physics) Metallurgy

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53
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2.49
FWCI (Field Weighted Citation Impact)
40
Refs
0.90
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Citation History

Topics

Supercapacitor Materials and Fabrication
Physical Sciences →  Materials Science →  Electronic, Optical and Magnetic Materials
Conducting polymers and applications
Physical Sciences →  Materials Science →  Polymers and Plastics
Advancements in Battery Materials
Physical Sciences →  Engineering →  Electrical and Electronic Engineering

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