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Crack-assisted charge injection into solvent-free liquid organic semiconductors via local electric field enhancementoa mark
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Publication Year
2020-08-01
Publisher
MDPI AG
Citation
Materials, Vol.13
Keyword
Charge injectionCrack engineeringLiquid semiconductorsOrganic electronicsSurface engineering
Mesh Keyword
Comsol multiphysicsCracked structuresLocal electric fieldOrganic electronicsOrganic semiconducting materialsPolymer substrateSolid state electronic devicesTransport process
All Science Classification Codes (ASJC)
Materials Science (all)
Abstract
Non-volatile liquid organic semiconducting materials have received much attention as emerging functional materials for organic electronic and optoelectronic devices due to their remarkable advantages. However, charge injection and transport processes are significantly impeded at interfaces between electrodes and liquid organic semiconductors, resulting in overall lower performance compared to conventional solid-state electronic devices. Here we successfully demonstrate efficient charge injection into solvent-free liquid organic semiconductors via cracked metal structures with a large number of edges leading to local electric field enhancement. For this work, thin metal films on deformable polymer substrates were mechanically stretched to generate cracks on the metal surfaces in a controlled manner, and charge injection properties into a typical non-volatile liquid organic semiconducting material, (9-2-ethylhexyl)carbazole (EHCz), were investigated in low bias region (i.e., ohmic current region). It was found that the cracked structures significantly increased the current density at a fixed external bias voltage via the local electric field enhancement, which was strongly supported by field intensity calculation using COMSOL Multiphysics software. We anticipate that these results will significantly contribute to the development and further refinement of various organic electronic and optoelectronic devices based on non-volatile liquid organic semiconducting materials.
ISSN
1996-1944
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/31489
DOI
https://doi.org/10.3390/ma13153349
Fulltext

Type
Article
Funding
Funding: This research was funded by the Basic Science Research Program through the National Research Foundation of Korea (NRF-2018R1C1B6003122).
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Park, Myung-June Image
Park, Myung-June박명준
Department of Chemical Engineering
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