Study of modified PEDOT:PSS for tuning the optical properties of its conductive thin films

The present work focuses on studying the optical properties of the pristine PEDOT:PSS and the PEDOT:PSS modified with de-ionized water, ethylene glycol and MWCNT. The effect of various additives on the absorption, the refractive index, and the dielectric constant has been inspected. The refractive i...

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Main Authors: Singh, Vinamrita, Kumar, Tanuj
Format: Article
Language:English
Published: Elsevier 2019
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Online Access:http://repository.vnu.edu.vn/handle/VNU_123/67931
https://doi.org/10.1016/j.jsamd.2019.08.009
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Institution: Vietnam National University, Hanoi
Language: English
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spelling oai:112.137.131.14:VNU_123-679312019-10-24T03:30:07Z Study of modified PEDOT:PSS for tuning the optical properties of its conductive thin films Singh, Vinamrita Kumar, Tanuj PEDOT:PSS Optical properties Refractive index Ethylene glycol MWCNT Optical conductivity The present work focuses on studying the optical properties of the pristine PEDOT:PSS and the PEDOT:PSS modified with de-ionized water, ethylene glycol and MWCNT. The effect of various additives on the absorption, the refractive index, and the dielectric constant has been inspected. The refractive index dispersion has been analyzed using the single oscillator model developed by Wemple and DiDomenico. The optical constants, such as the dispersion energy, the single oscillator energy, the average oscillator strength, the average interband oscillator strength, the long wavelength refractive index, and the plasma resonance frequency have been determined. The energy bandgap was found reduced with the addition of EG and MWCNT representing a red shift and a conformational change in the PEDOT:PSS from a benzoid to a quinoid structure. The UV-visible absorption spectrum indicates the creation of free charges. The increase in the refractive index with doping suggests the formation of localized energy states within the energy bandgap. These localized states act as recombination centers and increase the low energy electronic transitions. The dielectric constant was also found increased in the modified samples, exhibiting advantages for the formation of conducting thin films. A phase segregated morphology was obtained for the solvent treated PEDOT:PSS, and the MWCNTs were observed to be uniformly distributed throughout the polymer. Furthermore, the optical conductivity has been calculated to give comprehensive information about material properties and their systematic selection for desired applications 2019-10-24T03:30:07Z 2019-10-24T03:30:07Z 2019 Article Singh, V. & Kumar, T. (2019).Study of modified PEDOT:PSS for tuning the optical properties of its conductive thin films. Journal of Science: Advanced Materials and Devices 2468-2179 http://repository.vnu.edu.vn/handle/VNU_123/67931 https://doi.org/10.1016/j.jsamd.2019.08.009 en Journal of Science: Advanced Materials and Devices; application/pdf Elsevier
institution Vietnam National University, Hanoi
building VNU Library & Information Center
country Vietnam
collection VNU Digital Repository
language English
topic PEDOT:PSS
Optical properties
Refractive index
Ethylene glycol
MWCNT
Optical conductivity
spellingShingle PEDOT:PSS
Optical properties
Refractive index
Ethylene glycol
MWCNT
Optical conductivity
Singh, Vinamrita
Kumar, Tanuj
Study of modified PEDOT:PSS for tuning the optical properties of its conductive thin films
description The present work focuses on studying the optical properties of the pristine PEDOT:PSS and the PEDOT:PSS modified with de-ionized water, ethylene glycol and MWCNT. The effect of various additives on the absorption, the refractive index, and the dielectric constant has been inspected. The refractive index dispersion has been analyzed using the single oscillator model developed by Wemple and DiDomenico. The optical constants, such as the dispersion energy, the single oscillator energy, the average oscillator strength, the average interband oscillator strength, the long wavelength refractive index, and the plasma resonance frequency have been determined. The energy bandgap was found reduced with the addition of EG and MWCNT representing a red shift and a conformational change in the PEDOT:PSS from a benzoid to a quinoid structure. The UV-visible absorption spectrum indicates the creation of free charges. The increase in the refractive index with doping suggests the formation of localized energy states within the energy bandgap. These localized states act as recombination centers and increase the low energy electronic transitions. The dielectric constant was also found increased in the modified samples, exhibiting advantages for the formation of conducting thin films. A phase segregated morphology was obtained for the solvent treated PEDOT:PSS, and the MWCNTs were observed to be uniformly distributed throughout the polymer. Furthermore, the optical conductivity has been calculated to give comprehensive information about material properties and their systematic selection for desired applications
format Article
author Singh, Vinamrita
Kumar, Tanuj
author_facet Singh, Vinamrita
Kumar, Tanuj
author_sort Singh, Vinamrita
title Study of modified PEDOT:PSS for tuning the optical properties of its conductive thin films
title_short Study of modified PEDOT:PSS for tuning the optical properties of its conductive thin films
title_full Study of modified PEDOT:PSS for tuning the optical properties of its conductive thin films
title_fullStr Study of modified PEDOT:PSS for tuning the optical properties of its conductive thin films
title_full_unstemmed Study of modified PEDOT:PSS for tuning the optical properties of its conductive thin films
title_sort study of modified pedot:pss for tuning the optical properties of its conductive thin films
publisher Elsevier
publishDate 2019
url http://repository.vnu.edu.vn/handle/VNU_123/67931
https://doi.org/10.1016/j.jsamd.2019.08.009
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