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Kim, Kwanpyo
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Controlled aqueous synthesis of ultra-long copper nanowires for stretchable transparent conducting electrode

Author(s)
Hwang, ChahwanAn, JihyunChoi, Byung DooKim, KwanpyoJung, Soon-WonBaeg, Kang-JunKim, Myung-GilOk, Kwang MinHong, Jongin
Issued Date
2016-02
DOI
10.1039/c5tc03614c
URI
https://scholarworks.unist.ac.kr/handle/201301/18826
Fulltext
http://pubs.rsc.org/en/Content/ArticleLanding/2016/TC/C5TC03614C#!divAbstract
Citation
JOURNAL OF MATERIALS CHEMISTRY C, v.4, no.7, pp.1441 - 1447
Abstract
The environmentally benign synthesis of ultra-long copper nanowires with successful control of diameter and length for stretchable transparent conducting electrodes (TCEs) is reported. Ultra-long copper nanowires (CuNWs) with an average length of 92.5 μm (maximum length up to 260 μm) and an average diameter of 47 nm were synthesized using environmentally friendly water-alcohol mixtures and l-ascorbic acid as a reducing agent. A facile removal of insulating surface layers, such as organic capping molecules and copper oxide/hydroxide, by short-chain organic acid treatment allowed low contact resistance between the CuNWs without post-reductive treatment at elevated temperatures. The CuNWs were directly spray-coated on glass or polydimethylsiloxane (PDMS) at a low processing temperature of 130°C. The CuNW TCE on a glass substrate exhibited a low sheet resistance of 23.1 Ohm sq-1 and a high optical transmittance of 84.1% at 550 nm. Furthermore, the CuNWs were directly spray-coated on stretchable PDMS, which showed a low sheet resistance of 4.1 Ohm sq-1 and a high optical transmittance of 70% at 550 nm.
Publisher
ROYAL SOC CHEMISTRYROYAL SOC CHEMISTRY
ISSN
2050-7526
Keyword
INDIUM TIN OXIDETHIN-FILMSSILVER NANOWIRESGROWTHFABRICATIONEFFICIENCYOXIDATIONPOLYMERSURFACE

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