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Enhancing the conductivity of bacterial cellulose/polyvinyl alcohol composite for the development of flexible transparent electrodes

Dissertation (MSc (Physics))--University of Pretoria, 2024.

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Other Authors: Diale, M. (Mmantsae Moche)
Format: Thesis
Language:English
Published: University of Pretoria 2025
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access_status_str Open Access
author2 Diale, M. (Mmantsae Moche)
author_browse Diale, M. (Mmantsae Moche)
author_facet Diale, M. (Mmantsae Moche)
collection Thesis
dc_rights_str_mv © 2023 University of Pretoria. All rights reserved. The copyright in this work vests in the University of Pretoria. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of the University of Pretoria.
description Dissertation (MSc (Physics))--University of Pretoria, 2024.
format Thesis
id oai:repository.up.ac.za:2263/100221
institution University of Pretoria (South Africa)
language English
last_indexed 2026-06-10T12:39:04.809Z
license_str Other — see source repository
provenance_str_mv Harvested via OAI-PMH from UPSpace — University of Pretoria Institutional Repository
publishDate 2025
publishDateRange 2025
publishDateSort 2025
publisher University of Pretoria
publisherStr University of Pretoria
record_format dspace
source_str UPSpace — University of Pretoria Institutional Repository
spelling oai:repository.up.ac.za:2263/100221 Enhancing the conductivity of bacterial cellulose/polyvinyl alcohol composite for the development of flexible transparent electrodes Diale, M. (Mmantsae Moche) modisamaatseke@gmail.com Nolwazi, Nombona Ntobeng, Modisa Maatseke UCTD Sustainable Development Goals (SDGs) Polyvinyl alcohol Conductivity Thinfilm Solar cell Bacterial cellulose Natural and agricultural sciences theses SDG-07 SDG-07: Affordable and clean energy Dissertation (MSc (Physics))--University of Pretoria, 2024. This study addresses the key components required to enhance the power conversion efficiency of organic solar cells. The first part of the research focuses on incorporating silver nanoparticles into the PEDOT:PSS layer to enhance light absorption. The silver nanoparticles were synthesised using the chemical reduction method. Then incorporated into the PEDOT:PSS liquid to make a blend of PEDOT:PSS and silver nanoparticles. The blend was coated on top of a glass substrate using the spin coating method. Characterisation techniques such as XRD, TEM, SEM, Raman, and UV-vis were used. TEM analysis revealed that the silver nanoparticles synthesised were spherical and ranged in size from 10 to 70 nm. The UV-visible spectroscopy confirmed the presence of the silver nanoparticles, showing an absorption peak at 389 nm. Furthermore, UV-vis analysis was conducted to evaluate the absorption of both the pristine PEDOT:PSS and the PEDOT:PSS with silver nanoparticles. The findings showed an enhanced absorption in the PEDOT:PSS blend with silver nanoparticles, demonstrating that the incorporation of silver nanoparticles into the PEDOT:PSS improved its light absorption properties. The second part is directed towards fabricating a transparent, flexible, conductive substrate that will serve as an anode for the organic solar cell. Bacterial cellulose synthesised using kombucha tea through static cultivation was combined with polyvinyl alcohol to make flexible, lightweight and transparent substrates. The composite substrates were made conductive by adsorbing multi-walled carbon nanotubes onto the substrate using the adsorption method. Different concentrations of multi-walled carbon nanotubes were explored on the composite films. Characterisation techniques such as UV-vis spectroscopy, SEM, TEM, XRD, TGA and electrical conductivity measurements of the individual components and the final films were assessed. The substrate with a 0.05% concentration of multi-walled carbon nanotubes showed the highest conductivity. The TGA results showed that the addition of polyvinyl alcohol to bacterial cellulose resulted in composite substrates with lower degradation at temperatures 213- 467 ℃, as compared to pure bacterial cellulose which is due to the structural degradation of the composite substrates. The UV-vis transmittance spectra indicated that using a higher concentration of multi-walled carbon nanotube dispersion during fabrication resulted in electrically conductive transparent substrates with reduced transparency. National Research Funding Physics MSc (Physics) Unrestricted Faculty of Natural and Agricultural Sciences SDG-07: Affordable and clean energy 2025-01-21T13:31:12Z 2025-01-21T13:31:12Z 2025-04 2024-11 Dissertation * A2025 http://hdl.handle.net/2263/100221 DOI: https://doi.org/10.25403/UPresearchdata.28246676.v1 https://doi.org/10.25403/UPresearchdata.28246676 en © 2023 University of Pretoria. All rights reserved. The copyright in this work vests in the University of Pretoria. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of the University of Pretoria. application/pdf University of Pretoria
spellingShingle UCTD
Sustainable Development Goals (SDGs)
Polyvinyl alcohol
Conductivity
Thinfilm
Solar cell
Bacterial cellulose
Natural and agricultural sciences theses SDG-07
SDG-07: Affordable and clean energy
Enhancing the conductivity of bacterial cellulose/polyvinyl alcohol composite for the development of flexible transparent electrodes
title Enhancing the conductivity of bacterial cellulose/polyvinyl alcohol composite for the development of flexible transparent electrodes
title_full Enhancing the conductivity of bacterial cellulose/polyvinyl alcohol composite for the development of flexible transparent electrodes
title_fullStr Enhancing the conductivity of bacterial cellulose/polyvinyl alcohol composite for the development of flexible transparent electrodes
title_full_unstemmed Enhancing the conductivity of bacterial cellulose/polyvinyl alcohol composite for the development of flexible transparent electrodes
title_short Enhancing the conductivity of bacterial cellulose/polyvinyl alcohol composite for the development of flexible transparent electrodes
title_sort enhancing the conductivity of bacterial cellulose polyvinyl alcohol composite for the development of flexible transparent electrodes
topic UCTD
Sustainable Development Goals (SDGs)
Polyvinyl alcohol
Conductivity
Thinfilm
Solar cell
Bacterial cellulose
Natural and agricultural sciences theses SDG-07
SDG-07: Affordable and clean energy
url http://hdl.handle.net/2263/100221
https://doi.org/10.25403/UPresearchdata.28246676