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Microstructure and Electrical Conductivity of Electrospun Titanium Oxynitride Carbon Composite Nanofibers

Titanium oxynitride carbon composite nanofibers (TiON/C-CNFs) were synthesised with electrospinning and subsequent heat treatment in ammonia gas. In situ four-probe electrical conductivity measurements of individual TiON/C-CNFs were performed. Additionally, the TiON/C-CNFs were thoroughly analysed w...

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Autores principales: Koderman Podboršek, Gorazd, Zupančič, Špela, Kaufman, Rok, Surca, Angelja Kjara, Marsel, Aleš, Pavlišič, Andraž, Hodnik, Nejc, Dražić, Goran, Bele, Marjan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9268360/
https://www.ncbi.nlm.nih.gov/pubmed/35808013
http://dx.doi.org/10.3390/nano12132177
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author Koderman Podboršek, Gorazd
Zupančič, Špela
Kaufman, Rok
Surca, Angelja Kjara
Marsel, Aleš
Pavlišič, Andraž
Hodnik, Nejc
Dražić, Goran
Bele, Marjan
author_facet Koderman Podboršek, Gorazd
Zupančič, Špela
Kaufman, Rok
Surca, Angelja Kjara
Marsel, Aleš
Pavlišič, Andraž
Hodnik, Nejc
Dražić, Goran
Bele, Marjan
author_sort Koderman Podboršek, Gorazd
collection PubMed
description Titanium oxynitride carbon composite nanofibers (TiON/C-CNFs) were synthesised with electrospinning and subsequent heat treatment in ammonia gas. In situ four-probe electrical conductivity measurements of individual TiON/C-CNFs were performed. Additionally, the TiON/C-CNFs were thoroughly analysed with various techniques, such as X-ray and electron diffractions, electron microscopies and spectroscopies, thermogravimetric analysis and chemical analysis to determine the crystal structure, morphology, chemical composition, and N/O at. ratio. It was found that nanofibers were composed of 2–5 nm sized titanium oxynitride (TiON) nanoparticles embedded in an amorphous carbon matrix with a small degree of porosity. The average electrical conductivity of a single TiON/C-CNF was 1.2 kS/m and the bulk electrical conductivity of the TiON/C-CNF fabric was 0.053 kS/m. From the available data, the mesh density of the TiON/C-CNF fabric was estimated to have a characteristic length of 1.0 µm and electrical conductivity of a single TiON/C-CNF was estimated to be from 0.45 kS/m to 19 kS/m. The electrical conductivity of the measured TiON/C-CNFs is better than that of amorphous carbon nanofibers and has ohmic behaviour, which indicates that it can effectively serve as a new type of support material for electrocatalysts, batteries, sensors or supercapacitors.
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spelling pubmed-92683602022-07-09 Microstructure and Electrical Conductivity of Electrospun Titanium Oxynitride Carbon Composite Nanofibers Koderman Podboršek, Gorazd Zupančič, Špela Kaufman, Rok Surca, Angelja Kjara Marsel, Aleš Pavlišič, Andraž Hodnik, Nejc Dražić, Goran Bele, Marjan Nanomaterials (Basel) Article Titanium oxynitride carbon composite nanofibers (TiON/C-CNFs) were synthesised with electrospinning and subsequent heat treatment in ammonia gas. In situ four-probe electrical conductivity measurements of individual TiON/C-CNFs were performed. Additionally, the TiON/C-CNFs were thoroughly analysed with various techniques, such as X-ray and electron diffractions, electron microscopies and spectroscopies, thermogravimetric analysis and chemical analysis to determine the crystal structure, morphology, chemical composition, and N/O at. ratio. It was found that nanofibers were composed of 2–5 nm sized titanium oxynitride (TiON) nanoparticles embedded in an amorphous carbon matrix with a small degree of porosity. The average electrical conductivity of a single TiON/C-CNF was 1.2 kS/m and the bulk electrical conductivity of the TiON/C-CNF fabric was 0.053 kS/m. From the available data, the mesh density of the TiON/C-CNF fabric was estimated to have a characteristic length of 1.0 µm and electrical conductivity of a single TiON/C-CNF was estimated to be from 0.45 kS/m to 19 kS/m. The electrical conductivity of the measured TiON/C-CNFs is better than that of amorphous carbon nanofibers and has ohmic behaviour, which indicates that it can effectively serve as a new type of support material for electrocatalysts, batteries, sensors or supercapacitors. MDPI 2022-06-24 /pmc/articles/PMC9268360/ /pubmed/35808013 http://dx.doi.org/10.3390/nano12132177 Text en © 2022 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
Koderman Podboršek, Gorazd
Zupančič, Špela
Kaufman, Rok
Surca, Angelja Kjara
Marsel, Aleš
Pavlišič, Andraž
Hodnik, Nejc
Dražić, Goran
Bele, Marjan
Microstructure and Electrical Conductivity of Electrospun Titanium Oxynitride Carbon Composite Nanofibers
title Microstructure and Electrical Conductivity of Electrospun Titanium Oxynitride Carbon Composite Nanofibers
title_full Microstructure and Electrical Conductivity of Electrospun Titanium Oxynitride Carbon Composite Nanofibers
title_fullStr Microstructure and Electrical Conductivity of Electrospun Titanium Oxynitride Carbon Composite Nanofibers
title_full_unstemmed Microstructure and Electrical Conductivity of Electrospun Titanium Oxynitride Carbon Composite Nanofibers
title_short Microstructure and Electrical Conductivity of Electrospun Titanium Oxynitride Carbon Composite Nanofibers
title_sort microstructure and electrical conductivity of electrospun titanium oxynitride carbon composite nanofibers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9268360/
https://www.ncbi.nlm.nih.gov/pubmed/35808013
http://dx.doi.org/10.3390/nano12132177
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