Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene addition

Detalhes bibliográficos
Autor(a) principal: Mabilia, Felipe Teixeira
Data de Publicação: 2022
Outros Autores: Wang, Shu Hui
Tipo de documento: Artigo
Idioma: eng
Título da fonte: Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)
Texto Completo: https://doi.org/10.34624/nmse.v4i1.29374
Resumo: Compared to conventional inorganic semiconductors, organic semiconductors present several advantages, such as cost-effectiveness, mechanical toughness, synthesis versatility and simple production set-ups, among others. In this work, we have prepared conductive solid films based on multilayer graphene (mG) and poly(3,4-ethylenedioxythiophene):polystyrenesulfonate (PEDOT:PSS) from liquid dispersions. mG-10.6 wt% dispersion in isopropanol was prepared in two steps. In the first step, graphite was submitted to liquid phase exfoliation in N-methyl-pyrrolidone (NMP) (5.3 wt % of mG), then, in the following step, NMP was removed by precipitation and mG redispersed, using polyethyleneimine and acetic acid-1M in isopropanol, respectively. The nanocomposite films were prepared from dispersions of mG and PEDOT:PSS, by spin-coating, to reach pre-established solid concentrations of 10.2 wt % and 49.9 wt % of mG. The optical and electrical properties of the thin films were characterized using UV-Visible Spectroscopy and an adapted four-probe resistance measurement, while Raman Spectroscopy, Scanning Electron Microscopy (SEM), and Atomic Force Microscopy (AFM) were applied to analyze their morphological features. The thin films showed high transmittances, even multilayer, upholding more than 85% for three-layer films, similar to that found in the single-layer ones. The sheet resistances of the films were detected in the range of a few hundreds of Ω/□. Both transmittance and sheet resistance of the films were improved when compared to those found in pristine mG and pristine PEDOT:PSS, which is due to higher charge mobility in the nanocomposite. Raman Spectroscopy showed the formation of the composite by π-π interaction and the conformational change in the polymer chains was confirmed by peak shift. SEM analysis showed that the films are largely homogeneous, and mG is uniformly dispersed, nevertheless the mG platelets appear to be standing up from the film (AFM). The phase image (AFM) allows the differentiation between rigid and soft regions, i.e., mG/PEDOT and PSS, respectively. Semiconductive nanocomposites having high load of mG were successfully prepared, and their resulting electrical and optical properties make them suitable to be used, e.g., as transparent electrodes, in the fabrication of displays, lighting devices and photovoltaic materials or as multipurpose conductive inks.
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spelling Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene additionCompared to conventional inorganic semiconductors, organic semiconductors present several advantages, such as cost-effectiveness, mechanical toughness, synthesis versatility and simple production set-ups, among others. In this work, we have prepared conductive solid films based on multilayer graphene (mG) and poly(3,4-ethylenedioxythiophene):polystyrenesulfonate (PEDOT:PSS) from liquid dispersions. mG-10.6 wt% dispersion in isopropanol was prepared in two steps. In the first step, graphite was submitted to liquid phase exfoliation in N-methyl-pyrrolidone (NMP) (5.3 wt % of mG), then, in the following step, NMP was removed by precipitation and mG redispersed, using polyethyleneimine and acetic acid-1M in isopropanol, respectively. The nanocomposite films were prepared from dispersions of mG and PEDOT:PSS, by spin-coating, to reach pre-established solid concentrations of 10.2 wt % and 49.9 wt % of mG. The optical and electrical properties of the thin films were characterized using UV-Visible Spectroscopy and an adapted four-probe resistance measurement, while Raman Spectroscopy, Scanning Electron Microscopy (SEM), and Atomic Force Microscopy (AFM) were applied to analyze their morphological features. The thin films showed high transmittances, even multilayer, upholding more than 85% for three-layer films, similar to that found in the single-layer ones. The sheet resistances of the films were detected in the range of a few hundreds of Ω/□. Both transmittance and sheet resistance of the films were improved when compared to those found in pristine mG and pristine PEDOT:PSS, which is due to higher charge mobility in the nanocomposite. Raman Spectroscopy showed the formation of the composite by π-π interaction and the conformational change in the polymer chains was confirmed by peak shift. SEM analysis showed that the films are largely homogeneous, and mG is uniformly dispersed, nevertheless the mG platelets appear to be standing up from the film (AFM). The phase image (AFM) allows the differentiation between rigid and soft regions, i.e., mG/PEDOT and PSS, respectively. Semiconductive nanocomposites having high load of mG were successfully prepared, and their resulting electrical and optical properties make them suitable to be used, e.g., as transparent electrodes, in the fabrication of displays, lighting devices and photovoltaic materials or as multipurpose conductive inks.UA Editora2022-12-08info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/articleapplication/pdfhttps://doi.org/10.34624/nmse.v4i1.29374https://doi.org/10.34624/nmse.v4i1.29374Nanomaterials Science & Engineering; Vol 4 No 1 (2022): Nanomaterials Science & Engineering; 27-37Journal of Nanomaterials Science and Nanotechnology; Vol. 4 Núm. 1 (2022): Nanomaterials Science & Engineering; 27-37Journal of Nanomaterials Science and Nanotechnology; Vol. 4 No 1 (2022): Nanomaterials Science & Engineering; 27-37Nanomaterials Science & Engineering; vol. 4 n.º 1 (2022): Nanomaterials Science & Engineering; 27-372184-70022184-7002reponame:Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)instname:Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãoinstacron:RCAAPenghttps://proa.ua.pt/index.php/nmse/article/view/29374https://proa.ua.pt/index.php/nmse/article/view/29374/21168Copyright (c) 2022 Nanomaterials Science & Engineeringhttp://creativecommons.org/licenses/by-nc/4.0info:eu-repo/semantics/openAccessMabilia, Felipe TeixeiraWang, Shu Hui2022-12-27T02:15:25Zoai:proa.ua.pt:article/29374Portal AgregadorONGhttps://www.rcaap.pt/oai/openaireopendoar:71602024-03-19T16:28:53.706872Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos) - Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãofalse
dc.title.none.fl_str_mv Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene addition
title Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene addition
spellingShingle Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene addition
Mabilia, Felipe Teixeira
title_short Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene addition
title_full Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene addition
title_fullStr Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene addition
title_full_unstemmed Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene addition
title_sort Conductivity and transmittance enhancement of PEDOT:PSS thin films by graphene addition
author Mabilia, Felipe Teixeira
author_facet Mabilia, Felipe Teixeira
Wang, Shu Hui
author_role author
author2 Wang, Shu Hui
author2_role author
dc.contributor.author.fl_str_mv Mabilia, Felipe Teixeira
Wang, Shu Hui
description Compared to conventional inorganic semiconductors, organic semiconductors present several advantages, such as cost-effectiveness, mechanical toughness, synthesis versatility and simple production set-ups, among others. In this work, we have prepared conductive solid films based on multilayer graphene (mG) and poly(3,4-ethylenedioxythiophene):polystyrenesulfonate (PEDOT:PSS) from liquid dispersions. mG-10.6 wt% dispersion in isopropanol was prepared in two steps. In the first step, graphite was submitted to liquid phase exfoliation in N-methyl-pyrrolidone (NMP) (5.3 wt % of mG), then, in the following step, NMP was removed by precipitation and mG redispersed, using polyethyleneimine and acetic acid-1M in isopropanol, respectively. The nanocomposite films were prepared from dispersions of mG and PEDOT:PSS, by spin-coating, to reach pre-established solid concentrations of 10.2 wt % and 49.9 wt % of mG. The optical and electrical properties of the thin films were characterized using UV-Visible Spectroscopy and an adapted four-probe resistance measurement, while Raman Spectroscopy, Scanning Electron Microscopy (SEM), and Atomic Force Microscopy (AFM) were applied to analyze their morphological features. The thin films showed high transmittances, even multilayer, upholding more than 85% for three-layer films, similar to that found in the single-layer ones. The sheet resistances of the films were detected in the range of a few hundreds of Ω/□. Both transmittance and sheet resistance of the films were improved when compared to those found in pristine mG and pristine PEDOT:PSS, which is due to higher charge mobility in the nanocomposite. Raman Spectroscopy showed the formation of the composite by π-π interaction and the conformational change in the polymer chains was confirmed by peak shift. SEM analysis showed that the films are largely homogeneous, and mG is uniformly dispersed, nevertheless the mG platelets appear to be standing up from the film (AFM). The phase image (AFM) allows the differentiation between rigid and soft regions, i.e., mG/PEDOT and PSS, respectively. Semiconductive nanocomposites having high load of mG were successfully prepared, and their resulting electrical and optical properties make them suitable to be used, e.g., as transparent electrodes, in the fabrication of displays, lighting devices and photovoltaic materials or as multipurpose conductive inks.
publishDate 2022
dc.date.none.fl_str_mv 2022-12-08
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/article
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dc.identifier.uri.fl_str_mv https://doi.org/10.34624/nmse.v4i1.29374
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url https://doi.org/10.34624/nmse.v4i1.29374
dc.language.iso.fl_str_mv eng
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dc.relation.none.fl_str_mv https://proa.ua.pt/index.php/nmse/article/view/29374
https://proa.ua.pt/index.php/nmse/article/view/29374/21168
dc.rights.driver.fl_str_mv Copyright (c) 2022 Nanomaterials Science & Engineering
http://creativecommons.org/licenses/by-nc/4.0
info:eu-repo/semantics/openAccess
rights_invalid_str_mv Copyright (c) 2022 Nanomaterials Science & Engineering
http://creativecommons.org/licenses/by-nc/4.0
eu_rights_str_mv openAccess
dc.format.none.fl_str_mv application/pdf
dc.publisher.none.fl_str_mv UA Editora
publisher.none.fl_str_mv UA Editora
dc.source.none.fl_str_mv Nanomaterials Science & Engineering; Vol 4 No 1 (2022): Nanomaterials Science & Engineering; 27-37
Journal of Nanomaterials Science and Nanotechnology; Vol. 4 Núm. 1 (2022): Nanomaterials Science & Engineering; 27-37
Journal of Nanomaterials Science and Nanotechnology; Vol. 4 No 1 (2022): Nanomaterials Science & Engineering; 27-37
Nanomaterials Science & Engineering; vol. 4 n.º 1 (2022): Nanomaterials Science & Engineering; 27-37
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