4.7 Article

tructural control of highly oxidized carbon nanotube networks for high electrochemical performance

Journal

JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY
Volume 104, Issue -, Pages 172-178

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.jiec.2021.08.022

Keywords

Single-walled carbon nanotubes; Long multi-walled carbon nanotubes; Oxidation; Thermal deoxygenation; Surface area; Electrical conductivity; Electrochemical performance

Funding

  1. Korea Electrotechnology Research Institute [21A01002/21A01097]
  2. Ministry of Trade, Industry & Energy (MOTIE, Korea) [20004958, 20010829]
  3. Korea Evaluation Institute of Industrial Technology (KEIT) [20010829] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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This study presents a method for fabricating highly conductive and porous CNT network films through the filtration of oxidized carbon nanotube dispersions and thermal deoxygenation. The hybrid film of oxidized SWCNTs and oxidized long multi-walled CNTs exhibited enhanced electrochemical performance, attributed to increased mesopores and improved electrical conductivity.
Carbon nanotubes (CNTs) are one of the most suitable candidates for electrochemical applications because of their high electrical conductivity and large specific surface area. However, the bundling behavior of single-walled CNTs (SWCNTs) due to pi-pi interaction limits their solution processability and struc-tural control. Herein, we report a fabrication method for highly conductive and porous CNT network films exhibiting a high electrochemical performance in aqueous media. This was achieved through the filtration of a dispersant-free dispersion of oxidized carbon nanotubes by less defective chlorate-based oxidation and thermal deoxygenation in air. To increase the proportion of mesopores in the film, oxidized long multi-walled CNTs (Ox-LMWCNTs) were incorporated into Ox-SWCNT networks. The Ox-SWCNT/Ox-LMWCNT (1/1 wt.%) hybrid film exhibited a large surface area of 492 m(2)/g, which decreased to 225 m(2)/g after thermal treatment at 200 degrees C in air with increasing electrical conductivity up to 29,500 S/m. In particular, the proportion of mesopores increased from 65 to 89%. The enhanced electrochemical capacity of the hybrid films (147 F/g and 99% retention at 10 A/g) could be attributed to the increased mesopores and enhanced electrical conductivity of LMWCNTs after thermal deoxygenation even in air. (C) 2021 Published by Elsevier B.V. on behalf of The Korean Society of Industrial and Engineering Chemistry.

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