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Interior-architectured ZnO nanostructure for enhanced electrical conductivity via stepwise fabrication process.


ABSTRACT: Fabrication of ZnO nanostructure via direct patterning based on sol-gel process has advantages of low-cost, vacuum-free, and rapid process and producibility on flexible or non-uniform substrates. Recently, it has been applied in light-emitting devices and advanced nanopatterning. However, application as an electrically conducting layer processed at low temperature has been limited by its high resistivity due to interior structure. In this paper, we report interior-architecturing of sol-gel-based ZnO nanostructure for the enhanced electrical conductivity. Stepwise fabrication process combining the nanoimprint lithography (NIL) process with an additional growth process was newly applied. Changes in morphology, interior structure, and electrical characteristics of the fabricated ZnO nanolines were analyzed. It was shown that filling structural voids in ZnO nanolines with nanocrystalline ZnO contributed to reducing electrical resistivity. Both rigid and flexible substrates were adopted for the device implementation, and the robustness of ZnO nanostructure on flexible substrate was verified. Interior-architecturing of ZnO nanostructure lends itself well to the tunability of morphological, electrical, and optical characteristics of nanopatterned inorganic materials with the large-area, low-cost, and low-temperature producibility.

SUBMITTER: Chong E 

PROVIDER: S-EPMC4165434 | biostudies-literature | 2014

REPOSITORIES: biostudies-literature

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Interior-architectured ZnO nanostructure for enhanced electrical conductivity via stepwise fabrication process.

Chong Eugene E   Kim Sarah S   Choi Jun-Hyuk JH   Choi Dae-Geun DG   Jung Joo-Yun JY   Jeong Jun-Ho JH   Lee Eung-Sug ES   Lee Jaewhan J   Park Inkyu I   Lee Jihye J  

Nanoscale research letters 20140824 1


Fabrication of ZnO nanostructure via direct patterning based on sol-gel process has advantages of low-cost, vacuum-free, and rapid process and producibility on flexible or non-uniform substrates. Recently, it has been applied in light-emitting devices and advanced nanopatterning. However, application as an electrically conducting layer processed at low temperature has been limited by its high resistivity due to interior structure. In this paper, we report interior-architecturing of sol-gel-based  ...[more]

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