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Segregation-controlled self-assembly of silver nanowire networks using a template-free solution-based process

Authors
Shin, Ji WonLim, Hyo-RyoungCho, Hong-BaekKwon, Young-TaeChoa, Yong-Ho
Issue Date
May-2021
Publisher
Royal Society of Chemistry
Citation
Nanoscale, v.13, no.18, pp.8442 - 8451
Indexed
SCIE
SCOPUS
Journal Title
Nanoscale
Volume
13
Number
18
Start Page
8442
End Page
8451
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/106251
DOI
10.1039/d0nr08762a
ISSN
2040-3364
Abstract
Metal conductive patterning has been studied as an alternative to the most commonly used indium tin oxide electrodes. Printed electrodes are fabricated by several complicated processes including etching, photolithography, and laser- and template-based techniques. However, these patterning methods have increasingly encountered critical issues of long manufacturing times and high equipment costs that necessitate vacuum and high-temperature conditions. In this study, we present a template-free solution-based patterning method for the fabrication of transparent electronics by inducing segregation-based networks of silver nanowires (SGAgNWs); this is a potential method to fabricate cost effective and scalable optoelectronics. Micro-dimensional fine-patterned segregated networks with conductive cells are created by the self-assembly of one-dimensional nanomaterials under optimal ink conditions wherein different types of solvents and aspect ratios of silver nanowires (AgNWs) are formulated. Photoelectric properties can be controlled by adjusting the size of the cell, which is an empty domain surrounded by the AgNW assembly with microscale cell-to-cell distance dimensions ranging between 4 to 345 mu m. The as-obtained AgNW metal grid-formulated on a polyethylene terephthalate film-was identified as a high-performance transparent electrode (TE) device with excellent optoelectronic properties of 87.08% transmittance and 50 omega (-1) resistance. In addition, the electrical conductivity of the TE film is enhanced with a very low haze of less than 4% because of the intense pulsed light treatment that diminished the sheet resistance to 21.36 omega (-1), which is attributed to the creation of welded silver networks. The SGAgNW concept for TE technology demonstrates a very promising potential for use in next-generation flexible electronic devices.
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ERICA 공학대학 (DEPARTMENT OF MATERIALS SCIENCE AND CHEMICAL ENGINEERING)
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