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Development of cellulose-based conductive fabrics with electrical conductivity and flexibility

Authors
Kim, HyunjinYi, Joon-YeopKim, Byung-GeeSong, Ji EunJeong, Hee-JinKim, Hye Rim
Issue Date
Jun-2020
Publisher
PUBLIC LIBRARY SCIENCE
Citation
PLOS ONE, v.15, no.6, pp 1 - 19
Pages
19
Journal Title
PLOS ONE
Volume
15
Number
6
Start Page
1
End Page
19
URI
https://scholarworks.sookmyung.ac.kr/handle/2020.sw.sookmyung/1467
DOI
10.1371/journal.pone.0233952
ISSN
1932-6203
Abstract
This study aimed to produce cellulose-based conductive fabrics with electrical conductivity and flexibility. Bacterial cellulose (BC) and three chemical cellulose (CC), namely methyl cellulose (MC), hydroxypropyl cellulose (HPMC) and carboxymethyl cellulose (CMC) were in situ polymerized with aniline and the four conductive cellulose fabrics were compared and evaluated. Matrix-assisted laser desorption/ionization time-of-flight mass spectroscopy analysis confirmed that three CC-PANI composites displayed longer and more stable polymerization pattern than BC-PANI because of the different polymerization method: bulk polymerization for BC-PANI and emulsion polymerization for CC-PANI, respectively. The electrical conductivity of BC-PANI and CC-PANI were ranging from 0.962 x 10(-2) S/cm to 2.840 x 10(-2) S/cm. MC-PANI showed the highest electrical conductivity among the four conductive cellulose fabrics. The flexibility and crease recovery results showed that MC-PANI had the highest flexibility compared to BC-PANI, HPMC-PANI, and CMC-PANI. These results have confirmed that the electrical conductivity and flexibility were influenced by the type of cellulose, and MC-PANI was found to have the best performance in the electrical conductivity and flexibility.
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