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Inkjet Printing of Flexible Transparent Conductive Films with Silver Nanowires Ink

The inkjet printing process is a promising electronic printing technique for large-scale, printed, flexible and stretchable electronics because of features such as its high manufacturing speed, environmental friendliness, simple process, low cost, accurate positioning, and so on. As the base materia...

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Autores principales: Wu, Xiaoli, Wang, Shuyue, Luo, Zhengwu, Lu, Jiaxin, Lin, Kaiwen, Xie, Hui, Wang, Yuehui, Li, Jing-Ze
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8232118/
https://www.ncbi.nlm.nih.gov/pubmed/34203673
http://dx.doi.org/10.3390/nano11061571
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author Wu, Xiaoli
Wang, Shuyue
Luo, Zhengwu
Lu, Jiaxin
Lin, Kaiwen
Xie, Hui
Wang, Yuehui
Li, Jing-Ze
author_facet Wu, Xiaoli
Wang, Shuyue
Luo, Zhengwu
Lu, Jiaxin
Lin, Kaiwen
Xie, Hui
Wang, Yuehui
Li, Jing-Ze
author_sort Wu, Xiaoli
collection PubMed
description The inkjet printing process is a promising electronic printing technique for large-scale, printed, flexible and stretchable electronics because of features such as its high manufacturing speed, environmental friendliness, simple process, low cost, accurate positioning, and so on. As the base material of printed conductive patterns, conductive ink is the foundation of the development of printed electronics technology, and directly affects the performance and the quality of electronic products. In this paper, conductive ink with silver nanowires (AgNWs) was prepared, with AgNWs of lengths of 2–5 µm and diameters of 20 nm or so, isopropyl alcohol and ethylene glycol as the mixed solvents, and modified polysilane as the wetting agent. We discussed the relationship between the formula of the AgNWs ink and the surface tension, viscosity, contact angle between ink droplet and poly(ethylene) terephthalate (PET) surface, as well as the film-forming properties of the ink. Further, we analyzed the effects of the number of printed layers and the ink concentration of the AgNWs on the microstructures, photoelectric properties and accuracy of the printed patterns, as well as the change in the sheet resistance of the film during different bending cycles. The experimental results show that flexible transparent conductive patterns with a light transmittance of 550 nm of 83.1–88.4% and a sheet resistance of 34.0 Ω∙sq(−1)–78.3 nm∙sq(−1) can be obtained by using AgNWs ink of 0.38 mg∙mL(−1) to 0.57 mg∙mL(−1), a poly (ethylene terephthalate) (PET) substrate temperature of 40 °C, a nozzle temperature of 35 °C, and heat treated at 60 °C for 10 min. These performances indicate the excellent potential of the inkjet printing of AgNWs networks for developing flexible transparent conductive film.
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spelling pubmed-82321182021-06-26 Inkjet Printing of Flexible Transparent Conductive Films with Silver Nanowires Ink Wu, Xiaoli Wang, Shuyue Luo, Zhengwu Lu, Jiaxin Lin, Kaiwen Xie, Hui Wang, Yuehui Li, Jing-Ze Nanomaterials (Basel) Article The inkjet printing process is a promising electronic printing technique for large-scale, printed, flexible and stretchable electronics because of features such as its high manufacturing speed, environmental friendliness, simple process, low cost, accurate positioning, and so on. As the base material of printed conductive patterns, conductive ink is the foundation of the development of printed electronics technology, and directly affects the performance and the quality of electronic products. In this paper, conductive ink with silver nanowires (AgNWs) was prepared, with AgNWs of lengths of 2–5 µm and diameters of 20 nm or so, isopropyl alcohol and ethylene glycol as the mixed solvents, and modified polysilane as the wetting agent. We discussed the relationship between the formula of the AgNWs ink and the surface tension, viscosity, contact angle between ink droplet and poly(ethylene) terephthalate (PET) surface, as well as the film-forming properties of the ink. Further, we analyzed the effects of the number of printed layers and the ink concentration of the AgNWs on the microstructures, photoelectric properties and accuracy of the printed patterns, as well as the change in the sheet resistance of the film during different bending cycles. The experimental results show that flexible transparent conductive patterns with a light transmittance of 550 nm of 83.1–88.4% and a sheet resistance of 34.0 Ω∙sq(−1)–78.3 nm∙sq(−1) can be obtained by using AgNWs ink of 0.38 mg∙mL(−1) to 0.57 mg∙mL(−1), a poly (ethylene terephthalate) (PET) substrate temperature of 40 °C, a nozzle temperature of 35 °C, and heat treated at 60 °C for 10 min. These performances indicate the excellent potential of the inkjet printing of AgNWs networks for developing flexible transparent conductive film. MDPI 2021-06-15 /pmc/articles/PMC8232118/ /pubmed/34203673 http://dx.doi.org/10.3390/nano11061571 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wu, Xiaoli
Wang, Shuyue
Luo, Zhengwu
Lu, Jiaxin
Lin, Kaiwen
Xie, Hui
Wang, Yuehui
Li, Jing-Ze
Inkjet Printing of Flexible Transparent Conductive Films with Silver Nanowires Ink
title Inkjet Printing of Flexible Transparent Conductive Films with Silver Nanowires Ink
title_full Inkjet Printing of Flexible Transparent Conductive Films with Silver Nanowires Ink
title_fullStr Inkjet Printing of Flexible Transparent Conductive Films with Silver Nanowires Ink
title_full_unstemmed Inkjet Printing of Flexible Transparent Conductive Films with Silver Nanowires Ink
title_short Inkjet Printing of Flexible Transparent Conductive Films with Silver Nanowires Ink
title_sort inkjet printing of flexible transparent conductive films with silver nanowires ink
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8232118/
https://www.ncbi.nlm.nih.gov/pubmed/34203673
http://dx.doi.org/10.3390/nano11061571
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