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Simultaneous Transfer and Doping of CVD-Grown Graphene by Fluoropolymer for Transparent Conductive Films on Plastic SCIE SCOPUS

Title
Simultaneous Transfer and Doping of CVD-Grown Graphene by Fluoropolymer for Transparent Conductive Films on Plastic
Authors
Wi Hyoung LeeJiWonSukJongho LeeYufeng HaoJaesung ParkJaeWonYangHyung-Wook HaShanthi MuraliHarry ChouDeji Akinwandee, DRodney S. RuoffRuoff, RS
Date Issued
2012-02
Publisher
American Chemical Society
Abstract
Chemical doping can decrease sheet resistance of graphene while maintaining its high transparency. We report a new method to simultaneously transfer and dope chemical vapor deposition grown graphene onto a target substrate using a fluoropolymer as both the supporting and doping layer. Solvent was used to remove a significant fraction of the supporting fluoropolymer, but residual polymer remained that doped the graphene significantly. This contrasts with a more widely used supporting layer, polymethylmethacrylate, which does not Induce significant doping during transfer. The fluoropolymer doping mechanism can be explained by the rearrangement of fluorine atoms on the graphene basal plane caused by either thermal annealing or soaking in solvent, which Induces ordered dipole moments near the graphene surface. This simultaneous transfer and doping of the graphene with a fluoropolymer increases the carrier density significantly, and the resulting monolayer graphene film exhibits a sheet resistance of similar to 320 Omega/sq. Finally, the method presented here was used to fabricate flexible and a transparent graphene electrode on a plastic substrate.
Keywords
graphene transfer; transparent conductive film; field-effect transistor; doping; fluoropolymer; SELF-ASSEMBLED MONOLAYERS; FIELD-EFFECT TRANSISTORS; LARGE-AREA; RAMAN-SPECTROSCOPY; PERFORMANCE; ELECTRONICS; SCATTERING; SUBSTRATE; SIO2
URI
https://oasis.postech.ac.kr/handle/2014.oak/16433
DOI
10.1021/NN203998J
ISSN
1936-0851
Article Type
Article
Citation
ACS NANO, vol. 6, no. 2, page. 1284 - 1290, 2012-02
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