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Design and Optimization of Flexible Polypyrrole/Bacterial Cellulose Conductive Nanocomposites Using Response Surface Methodology

Flexible conductive materials have greatly promoted the rapid development of intelligent and wearable textiles. This article reports the design of flexible polypyrrole/bacterial cellulose (PPy/BC) conductive nanocomposites by in situ chemical polymerization. Box-Behnken response surface methodology...

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Autores principales: Chen, Yasong, Wang, Fuying, Dong, Lipan, Li, Zheng, Chen, Li, He, Xinhai, Gong, Jixian, Zhang, Jianfei, Li, Qiujin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6630341/
https://www.ncbi.nlm.nih.gov/pubmed/31159509
http://dx.doi.org/10.3390/polym11060960
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author Chen, Yasong
Wang, Fuying
Dong, Lipan
Li, Zheng
Chen, Li
He, Xinhai
Gong, Jixian
Zhang, Jianfei
Li, Qiujin
author_facet Chen, Yasong
Wang, Fuying
Dong, Lipan
Li, Zheng
Chen, Li
He, Xinhai
Gong, Jixian
Zhang, Jianfei
Li, Qiujin
author_sort Chen, Yasong
collection PubMed
description Flexible conductive materials have greatly promoted the rapid development of intelligent and wearable textiles. This article reports the design of flexible polypyrrole/bacterial cellulose (PPy/BC) conductive nanocomposites by in situ chemical polymerization. Box-Behnken response surface methodology has been applied to optimize the process. The effects of the pyrrole amount, the molar ratio of HCl to pyrrole and polymerization time on conductivity were investigated. A flexible PPy/BC nanocomposite was obtained with an outstanding electrical conductivity as high as 7.34 S cm(−1). Morphological, thermal stability and electrochemical properties of the nanocomposite were also studied. The flexible PPy/BC composite with a core-sheath structure exhibited higher thermal stability than pure cellulose, possessed a high areal capacitance of 1001.26 mF cm(−2) at the discharge current density of 1 mA cm(−2), but its cycling stability could be further improved. The findings of this research demonstrate that the response surface methodology is one of the most effective approaches for optimizing the conditions of synthesis. It also indicates that the PPy/BC composite is a promising material for applications in intelligent and wearable textiles.
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spelling pubmed-66303412019-08-19 Design and Optimization of Flexible Polypyrrole/Bacterial Cellulose Conductive Nanocomposites Using Response Surface Methodology Chen, Yasong Wang, Fuying Dong, Lipan Li, Zheng Chen, Li He, Xinhai Gong, Jixian Zhang, Jianfei Li, Qiujin Polymers (Basel) Article Flexible conductive materials have greatly promoted the rapid development of intelligent and wearable textiles. This article reports the design of flexible polypyrrole/bacterial cellulose (PPy/BC) conductive nanocomposites by in situ chemical polymerization. Box-Behnken response surface methodology has been applied to optimize the process. The effects of the pyrrole amount, the molar ratio of HCl to pyrrole and polymerization time on conductivity were investigated. A flexible PPy/BC nanocomposite was obtained with an outstanding electrical conductivity as high as 7.34 S cm(−1). Morphological, thermal stability and electrochemical properties of the nanocomposite were also studied. The flexible PPy/BC composite with a core-sheath structure exhibited higher thermal stability than pure cellulose, possessed a high areal capacitance of 1001.26 mF cm(−2) at the discharge current density of 1 mA cm(−2), but its cycling stability could be further improved. The findings of this research demonstrate that the response surface methodology is one of the most effective approaches for optimizing the conditions of synthesis. It also indicates that the PPy/BC composite is a promising material for applications in intelligent and wearable textiles. MDPI 2019-06-02 /pmc/articles/PMC6630341/ /pubmed/31159509 http://dx.doi.org/10.3390/polym11060960 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, Yasong
Wang, Fuying
Dong, Lipan
Li, Zheng
Chen, Li
He, Xinhai
Gong, Jixian
Zhang, Jianfei
Li, Qiujin
Design and Optimization of Flexible Polypyrrole/Bacterial Cellulose Conductive Nanocomposites Using Response Surface Methodology
title Design and Optimization of Flexible Polypyrrole/Bacterial Cellulose Conductive Nanocomposites Using Response Surface Methodology
title_full Design and Optimization of Flexible Polypyrrole/Bacterial Cellulose Conductive Nanocomposites Using Response Surface Methodology
title_fullStr Design and Optimization of Flexible Polypyrrole/Bacterial Cellulose Conductive Nanocomposites Using Response Surface Methodology
title_full_unstemmed Design and Optimization of Flexible Polypyrrole/Bacterial Cellulose Conductive Nanocomposites Using Response Surface Methodology
title_short Design and Optimization of Flexible Polypyrrole/Bacterial Cellulose Conductive Nanocomposites Using Response Surface Methodology
title_sort design and optimization of flexible polypyrrole/bacterial cellulose conductive nanocomposites using response surface methodology
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6630341/
https://www.ncbi.nlm.nih.gov/pubmed/31159509
http://dx.doi.org/10.3390/polym11060960
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