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Novel Insights into Inkjet Printed Silver Nanowires Flexible Transparent Conductive Films

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2021 Jul 24
PMID 34299339
Citations 7
Authors
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Abstract

Silver nanowire (AgNWs) inks for inkjet printing were prepared and the effects of the solvent system, wetting agent, AgNWs suspension on the viscosity, surface tension, contact angle between ink droplet and poly(ethylene) terephthalate (PET) surface, and pH value of AgNWs ink were discussed. Further, AgNWs flexible transparent conductive films were fabricated by using inkjet printing process on the PET substrate, and the effects of the number printing layer, heat treatment temperature, drop frequency, and number of nozzle on the microstructures and photoelectric properties of AgNWs films were investigated in detail. The experimental results demonstrated that the 14-layer AgNWs printed film heated at 60 °C and 70 °C had an average sheet resistance of 13 Ω∙sq and 23 Ω∙sq and average transparency of 81.9% and 83.1%, respectively, and displayed good photoelectric performance when the inkjet printing parameters were set to the voltage of 20 V, number of nozzles of 16, drop frequency of 7000 Hz, droplet spacing of 15 μm, PET substrate temperatures of 40 °C and nozzles of 35 °C during printing, and heat treatment at 60 °C for 20 min. The accumulation and overflow of AgNWs at the edges of the linear pattern were observed, which resulted in a decrease in printing accuracy. We successfully printed the heart-shaped pattern and then demonstrated that it could work well. This showed that the well-defined pattern with good photoelectric properties can be obtained by using an inkjet printing process with silver nanowires ink as inkjet material.

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References
1.
Lu Z, Layani M, Zhao X, Tan L, Sun T, Fan S . Fabrication of flexible thermoelectric thin film devices by inkjet printing. Small. 2014; 10(17):3551-4. DOI: 10.1002/smll.201303126. View

2.
Liu C, Yu X . Silver nanowire-based transparent, flexible, and conductive thin film. Nanoscale Res Lett. 2011; 6(1):75. PMC: 3212223. DOI: 10.1186/1556-276X-6-75. View

3.
Li Y, Feng S, Cao S, Zhang J, Kong D . Printable Liquid Metal Microparticle Ink for Ultrastretchable Electronics. ACS Appl Mater Interfaces. 2020; 12(45):50852-50859. DOI: 10.1021/acsami.0c15084. View

4.
Yu H, Jin N, Wang Z, Lin J, Wei J, Luo Q . Use of solution-processed zinc oxide to prevent the breakdown in silver nanowire networks. Nanotechnology. 2020; 31(18):18LT01. DOI: 10.1088/1361-6528/ab6fe4. View

5.
Madaria A, Kumar A, Zhou C . Large scale, highly conductive and patterned transparent films of silver nanowires on arbitrary substrates and their application in touch screens. Nanotechnology. 2011; 22(24):245201. DOI: 10.1088/0957-4484/22/24/245201. View