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Fabrication of Stretchable Copper Coated Carbon Nanotube Conductor for Non-Enzymatic Glucose Detection Electrode with Low Detection Limit and Selectivity

The increasing demand for wearable glucose sensing has stimulated growing interest in stretchable electrodes. The development of the electrode materials having large stretchability, low detection limit, and good selectivity is the key component for constructing high performance wearable glucose sens...

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Autores principales: Jiang, Dawei, Liu, Zhongsheng, Wu, Kunkun, Mou, Linlin, Ovalle-Robles, Raquel, Inoue, Kanzan, Zhang, Yu, Yuan, Ningyi, Ding, Jianning, Qiu, Jianhua, Huang, Yi, Liu, Zunfeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6415456/
https://www.ncbi.nlm.nih.gov/pubmed/30966410
http://dx.doi.org/10.3390/polym10040375
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author Jiang, Dawei
Liu, Zhongsheng
Wu, Kunkun
Mou, Linlin
Ovalle-Robles, Raquel
Inoue, Kanzan
Zhang, Yu
Yuan, Ningyi
Ding, Jianning
Qiu, Jianhua
Huang, Yi
Liu, Zunfeng
author_facet Jiang, Dawei
Liu, Zhongsheng
Wu, Kunkun
Mou, Linlin
Ovalle-Robles, Raquel
Inoue, Kanzan
Zhang, Yu
Yuan, Ningyi
Ding, Jianning
Qiu, Jianhua
Huang, Yi
Liu, Zunfeng
author_sort Jiang, Dawei
collection PubMed
description The increasing demand for wearable glucose sensing has stimulated growing interest in stretchable electrodes. The development of the electrode materials having large stretchability, low detection limit, and good selectivity is the key component for constructing high performance wearable glucose sensors. In this work, we presented fabrication of stretchable conductor based on the copper coated carbon nanotube sheath-core fiber, and its application as non-enzymatic electrode for glucose detection with high stretchability, low detection limit, and selectivity. The sheath-core fiber was fabricated by coating copper coated carbon nanotube on a pre-stretched rubber fiber core followed by release of pre-stretch, which had a hierarchically buckled structure. It showed a small resistance change as low as 27% as strain increasing from 0% to 500% strain, and a low resistance of 0.4 Ω·cm(−1) at strain of 500%. This electrode showed linear glucose concentration detection in the range between 0.05 mM and 5 mM and good selectivity against sucrose, lactic acid, uric acid, acrylic acid in phosphate buffer saline solution, and showed stable signal in high salt concentration. The limit of detection (LOD) was 0.05 mM, for the range of 0.05–5 mM, the sensitivity is 46 mA·M(−1). This electrode can withstand large strain of up to 60% with negligible influence on its performance.
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spelling pubmed-64154562019-04-02 Fabrication of Stretchable Copper Coated Carbon Nanotube Conductor for Non-Enzymatic Glucose Detection Electrode with Low Detection Limit and Selectivity Jiang, Dawei Liu, Zhongsheng Wu, Kunkun Mou, Linlin Ovalle-Robles, Raquel Inoue, Kanzan Zhang, Yu Yuan, Ningyi Ding, Jianning Qiu, Jianhua Huang, Yi Liu, Zunfeng Polymers (Basel) Article The increasing demand for wearable glucose sensing has stimulated growing interest in stretchable electrodes. The development of the electrode materials having large stretchability, low detection limit, and good selectivity is the key component for constructing high performance wearable glucose sensors. In this work, we presented fabrication of stretchable conductor based on the copper coated carbon nanotube sheath-core fiber, and its application as non-enzymatic electrode for glucose detection with high stretchability, low detection limit, and selectivity. The sheath-core fiber was fabricated by coating copper coated carbon nanotube on a pre-stretched rubber fiber core followed by release of pre-stretch, which had a hierarchically buckled structure. It showed a small resistance change as low as 27% as strain increasing from 0% to 500% strain, and a low resistance of 0.4 Ω·cm(−1) at strain of 500%. This electrode showed linear glucose concentration detection in the range between 0.05 mM and 5 mM and good selectivity against sucrose, lactic acid, uric acid, acrylic acid in phosphate buffer saline solution, and showed stable signal in high salt concentration. The limit of detection (LOD) was 0.05 mM, for the range of 0.05–5 mM, the sensitivity is 46 mA·M(−1). This electrode can withstand large strain of up to 60% with negligible influence on its performance. MDPI 2018-03-28 /pmc/articles/PMC6415456/ /pubmed/30966410 http://dx.doi.org/10.3390/polym10040375 Text en © 2018 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
Jiang, Dawei
Liu, Zhongsheng
Wu, Kunkun
Mou, Linlin
Ovalle-Robles, Raquel
Inoue, Kanzan
Zhang, Yu
Yuan, Ningyi
Ding, Jianning
Qiu, Jianhua
Huang, Yi
Liu, Zunfeng
Fabrication of Stretchable Copper Coated Carbon Nanotube Conductor for Non-Enzymatic Glucose Detection Electrode with Low Detection Limit and Selectivity
title Fabrication of Stretchable Copper Coated Carbon Nanotube Conductor for Non-Enzymatic Glucose Detection Electrode with Low Detection Limit and Selectivity
title_full Fabrication of Stretchable Copper Coated Carbon Nanotube Conductor for Non-Enzymatic Glucose Detection Electrode with Low Detection Limit and Selectivity
title_fullStr Fabrication of Stretchable Copper Coated Carbon Nanotube Conductor for Non-Enzymatic Glucose Detection Electrode with Low Detection Limit and Selectivity
title_full_unstemmed Fabrication of Stretchable Copper Coated Carbon Nanotube Conductor for Non-Enzymatic Glucose Detection Electrode with Low Detection Limit and Selectivity
title_short Fabrication of Stretchable Copper Coated Carbon Nanotube Conductor for Non-Enzymatic Glucose Detection Electrode with Low Detection Limit and Selectivity
title_sort fabrication of stretchable copper coated carbon nanotube conductor for non-enzymatic glucose detection electrode with low detection limit and selectivity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6415456/
https://www.ncbi.nlm.nih.gov/pubmed/30966410
http://dx.doi.org/10.3390/polym10040375
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