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Laser digital patterning of conductive electrodes using metal oxide nanomaterialsLaser digital patterning of conductive electrodes using metal oxide nanomaterials

Other Titles
Laser digital patterning of conductive electrodes using metal oxide nanomaterials
Authors
Nam, V.B.Giang, T.T.Koo, SangmoRho, JunsukLee, Daeho
Issue Date
Jul-2020
Publisher
SPRINGER
Keywords
CuO; Digital patterning; ITO; Laser; NiO; Reductive sintering; ZnO
Citation
Nano Convergence, v.7, no.1, pp.1 - 17
Journal Title
Nano Convergence
Volume
7
Number
1
Start Page
1
End Page
17
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/67526
DOI
10.1186/s40580-020-00232-9
ISSN
2196-5404
Abstract
As an alternative approach to the conventional deposition and photolithographic processes, the laser digital patterning (LDP) process, which is also known as the laser direct writing process, has attracted considerable attention because it is a non-photolithographic, non-vacuum, on-demand, and cost-effective electrode fabrication route that can be applied to various substrates, including heat-sensitive flexible substrates. The LDP process was initially developed using noble metal nanoparticles (NPs) such as Au and Ag because such materials are free from oxidation even in a nanosize configuration. Thus, the NPs must be fused together to form continuous conductive structures upon laser irradiation. However, common metals are easily oxidized at the nanoscale and exist in oxidized forms owing to the extremely large surface-to-volume ratio of NPs. Therefore, to fabricate conductive electrodes using common metal NPs via the LDP process, laser irradiation should be used to sinter the NPs and simultaneously induce additional photochemical reactions, such as reduction, and defect structure modification to increase the conductivity of the electrodes. This review summarizes recent studies on the LDP process in which metal oxide NPs, such as ITO, ZnO, CuO, and NiO, were exclusively utilized for fabricating conductive electrodes. The outlook of the LDP process for these materials is also discussed as a method that can be used together with or as a replacement for conventional ones to produce next-generation transparent conductors, sensors, and electronics. © 2020, The Author(s).
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Engineering (기계·스마트·산업공학부(기계공학전공))
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