Cargando…

Thermoelectric Properties of Cotton Fabrics Dip-Coated in Pyrolytically Stripped Pyrograf(®) III Carbon Nanofiber Based Aqueous Inks

The transport properties of commercial carbon nanofibers (CNFs) produced by chemical vapor deposition (CVD) depend on the various conditions used during their growth and post-growth synthesis, which also affect their derivate CNF-based textile fabrics. Here, the production and thermoelectric (TE) pr...

Descripción completa

Detalles Bibliográficos
Autores principales: Paleo, Antonio J., Krause, Beate, Cerqueira, Maria F., González-Domínguez, Jose M., Muñoz, Enrique, Pötschke, Petra, Rocha, Ana M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10305365/
https://www.ncbi.nlm.nih.gov/pubmed/37374519
http://dx.doi.org/10.3390/ma16124335
_version_ 1785065716234321920
author Paleo, Antonio J.
Krause, Beate
Cerqueira, Maria F.
González-Domínguez, Jose M.
Muñoz, Enrique
Pötschke, Petra
Rocha, Ana M.
author_facet Paleo, Antonio J.
Krause, Beate
Cerqueira, Maria F.
González-Domínguez, Jose M.
Muñoz, Enrique
Pötschke, Petra
Rocha, Ana M.
author_sort Paleo, Antonio J.
collection PubMed
description The transport properties of commercial carbon nanofibers (CNFs) produced by chemical vapor deposition (CVD) depend on the various conditions used during their growth and post-growth synthesis, which also affect their derivate CNF-based textile fabrics. Here, the production and thermoelectric (TE) properties of cotton woven fabrics (CWFs) functionalized with aqueous inks made from different amounts of pyrolytically stripped (PS) Pyrograf(®) III PR 25 PS XT CNFs via dip-coating method are presented. At 30 °C and depending on the CNF content used in the dispersions, the modified textiles show electrical conductivities (σ) varying between ~5 and 23 S m(−1) with a constant negative Seebeck coefficient (S) of −1.1 μVK(−1). Moreover, unlike the as-received CNFs, the functionalized textiles present an increase in their σ from 30 °C to 100 °C (dσ/dT > 0), explained by the 3D variable range hopping (VRH) model as the charge carriers going beyond an aleatory network of potential wells by thermally activated hopping. However, as it happens with the CNFs, the dip-coated textiles show an increment in their S with temperature (dS/dT > 0) successfully fitted with the model proposed for some doped multiwall carbon nanotube (MWCNT) mats. All these results are presented with the aim of discerning the authentic function of this type of pyrolytically stripped Pyrograf(®) III CNFs on the thermoelectric properties of their derived textiles.
format Online
Article
Text
id pubmed-10305365
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-103053652023-06-29 Thermoelectric Properties of Cotton Fabrics Dip-Coated in Pyrolytically Stripped Pyrograf(®) III Carbon Nanofiber Based Aqueous Inks Paleo, Antonio J. Krause, Beate Cerqueira, Maria F. González-Domínguez, Jose M. Muñoz, Enrique Pötschke, Petra Rocha, Ana M. Materials (Basel) Article The transport properties of commercial carbon nanofibers (CNFs) produced by chemical vapor deposition (CVD) depend on the various conditions used during their growth and post-growth synthesis, which also affect their derivate CNF-based textile fabrics. Here, the production and thermoelectric (TE) properties of cotton woven fabrics (CWFs) functionalized with aqueous inks made from different amounts of pyrolytically stripped (PS) Pyrograf(®) III PR 25 PS XT CNFs via dip-coating method are presented. At 30 °C and depending on the CNF content used in the dispersions, the modified textiles show electrical conductivities (σ) varying between ~5 and 23 S m(−1) with a constant negative Seebeck coefficient (S) of −1.1 μVK(−1). Moreover, unlike the as-received CNFs, the functionalized textiles present an increase in their σ from 30 °C to 100 °C (dσ/dT > 0), explained by the 3D variable range hopping (VRH) model as the charge carriers going beyond an aleatory network of potential wells by thermally activated hopping. However, as it happens with the CNFs, the dip-coated textiles show an increment in their S with temperature (dS/dT > 0) successfully fitted with the model proposed for some doped multiwall carbon nanotube (MWCNT) mats. All these results are presented with the aim of discerning the authentic function of this type of pyrolytically stripped Pyrograf(®) III CNFs on the thermoelectric properties of their derived textiles. MDPI 2023-06-12 /pmc/articles/PMC10305365/ /pubmed/37374519 http://dx.doi.org/10.3390/ma16124335 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Paleo, Antonio J.
Krause, Beate
Cerqueira, Maria F.
González-Domínguez, Jose M.
Muñoz, Enrique
Pötschke, Petra
Rocha, Ana M.
Thermoelectric Properties of Cotton Fabrics Dip-Coated in Pyrolytically Stripped Pyrograf(®) III Carbon Nanofiber Based Aqueous Inks
title Thermoelectric Properties of Cotton Fabrics Dip-Coated in Pyrolytically Stripped Pyrograf(®) III Carbon Nanofiber Based Aqueous Inks
title_full Thermoelectric Properties of Cotton Fabrics Dip-Coated in Pyrolytically Stripped Pyrograf(®) III Carbon Nanofiber Based Aqueous Inks
title_fullStr Thermoelectric Properties of Cotton Fabrics Dip-Coated in Pyrolytically Stripped Pyrograf(®) III Carbon Nanofiber Based Aqueous Inks
title_full_unstemmed Thermoelectric Properties of Cotton Fabrics Dip-Coated in Pyrolytically Stripped Pyrograf(®) III Carbon Nanofiber Based Aqueous Inks
title_short Thermoelectric Properties of Cotton Fabrics Dip-Coated in Pyrolytically Stripped Pyrograf(®) III Carbon Nanofiber Based Aqueous Inks
title_sort thermoelectric properties of cotton fabrics dip-coated in pyrolytically stripped pyrograf(®) iii carbon nanofiber based aqueous inks
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10305365/
https://www.ncbi.nlm.nih.gov/pubmed/37374519
http://dx.doi.org/10.3390/ma16124335
work_keys_str_mv AT paleoantonioj thermoelectricpropertiesofcottonfabricsdipcoatedinpyrolyticallystrippedpyrografiiicarbonnanofiberbasedaqueousinks
AT krausebeate thermoelectricpropertiesofcottonfabricsdipcoatedinpyrolyticallystrippedpyrografiiicarbonnanofiberbasedaqueousinks
AT cerqueiramariaf thermoelectricpropertiesofcottonfabricsdipcoatedinpyrolyticallystrippedpyrografiiicarbonnanofiberbasedaqueousinks
AT gonzalezdominguezjosem thermoelectricpropertiesofcottonfabricsdipcoatedinpyrolyticallystrippedpyrografiiicarbonnanofiberbasedaqueousinks
AT munozenrique thermoelectricpropertiesofcottonfabricsdipcoatedinpyrolyticallystrippedpyrografiiicarbonnanofiberbasedaqueousinks
AT potschkepetra thermoelectricpropertiesofcottonfabricsdipcoatedinpyrolyticallystrippedpyrografiiicarbonnanofiberbasedaqueousinks
AT rochaanam thermoelectricpropertiesofcottonfabricsdipcoatedinpyrolyticallystrippedpyrografiiicarbonnanofiberbasedaqueousinks