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Plasmonic-Tuned Flash Cu Nanowelding with Ultrafast Photochemical-Reducing and Interlocking on Flexible Plastics

Cited 101 time in Web of Science Cited 103 time in Scopus
Authors

Park, Jung Hwan; Han, Seungyong; Kim, Dongkwan; You, Byoung Kuk; Joe, Daniel J.; Hong, Sukjoon; Seo, Jeongmin; Kwon, Jinhyeong; Jeong, Chang Kyu; Park, Hong-Jin; Kim, Taek-Soo; Ko, Seung Hwan; Lee, Keon Jae

Issue Date
2017-08
Publisher
John Wiley & Sons Ltd.
Citation
Advanced Functional Materials, Vol.27 No.29, p. 1701138
Abstract
Herein, a high-performance copper nanowire (Cu NW) network (sheet resistance approximate to 17 Omega sq(-1), transmittance 88%) fabricated by plasmonic-tuned flash welding (PFW) with ultrafast interlocking and photochemical reducing is reported, which greatly enhance the mechanical and chemical stability of Cu NWs. Xenon flash spectrum is tuned in an optimized distribution (maximized light intensity at 600 nm wavelength) through modulation of electron kinetic energy in the lamp by generating drift potential for preferential photothermal interactions. High-intensity visible light is emitted by the plasmonic-tuned flash, which strongly improves Cu nanowelding without oxidation. Near-infrared spectrum of the flash induced an interlocking structure of NW/polyethylene terephthalate interface by exciting Cu NW surface plasmon polaritons (SPPs), increasing adhesion of the Cu nanonetwork by 208%. In addition, ultrafast photochemical reduction of Cu NWs is accomplished in air by flash-induced electron excitations and relevant chemical reactions. The PFW effects of localized surface plasmons and SPPs on junction welding and adhesion strengthening of Cu network are theoretically studied as physical behaviors by finite-difference time-domain simulations. Finally, a transparent resistive memory and a touch screen panel are demonstrated by using the flash-induced Cu NWs, showing versatile and practical uses of PFW-treated Cu NW electrodes for transparent flexible electronics.
ISSN
1616-301X
URI
https://hdl.handle.net/10371/206662
DOI
https://doi.org/10.1002/adfm.201701138
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  • College of Engineering
  • Department of Mechanical Engineering
Research Area Laser Assisted Patterning, Liquid Crystal Elastomer, Stretchable Electronics, 로보틱스, 스마트 제조, 열공학

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