Highly Conductive Flexible Conductor Based on PEDOT:PSS/MWCNTs Nano Composite

Flexible textiles with strong electrical conductivities have enormous potential as active components in wearable electronics. In this study, we fabricated highly flexible electrical conductors based on cotton fabrics using multiwalled carbon nanotubes (MWCNTs) and poly(3,4-ethylenedioxythiophene)/po...

Full description

Bibliographic Details
Main Author: Fahad Alhashmi Alamer
Format: Article
Language:English
Published: MDPI AG 2023-01-01
Series:Crystals
Subjects:
Online Access:https://www.mdpi.com/2073-4352/13/2/192
_version_ 1797621547434770432
author Fahad Alhashmi Alamer
author_facet Fahad Alhashmi Alamer
author_sort Fahad Alhashmi Alamer
collection DOAJ
description Flexible textiles with strong electrical conductivities have enormous potential as active components in wearable electronics. In this study, we fabricated highly flexible electrical conductors based on cotton fabrics using multiwalled carbon nanotubes (MWCNTs) and poly(3,4-ethylenedioxythiophene)/poly(styrenesulfonate) (PEDOT:PSS) nanocomposites. We propose that mixing and drop-casting with different amounts of MWCNTs and a fixed amount of doped PEDOT:PSS using a cotton fabric provides a wide range of conductivities depending on the amount of MWCNTs in the mixture. Scanning electron microscopy (SEM) confirmed that the distribution of MWCNTs in the PEDOT:PSS films coated the surface of the cotton fabric, thereby increasing its electrical conductivity. We found that the amount of MWCNTs significantly affected the electrical properties of the nanocomposite cotton in two ways. First, the sheet resistance of the nanocomposite cotton decreased from 78.35 Ω/□ to 2.86 Ω/□ when the concentration of the nanocomposite was increased from 9.21 wt% to 60.27 wt%. This implies that the electrical properties of the nanocomposite cotton can be adjusted by controlling the amount of MWCNTs in the blend. Moreover, we found that the relationship between the sheet resistance and nanocomposite concentration obeys the power law with an exponent α ~ 1.676. Second, the study of the effect of temperature on the resistance indicates that the conductive nanocomposite exhibits semiconductor behavior in the temperature range 24–120 °C and obeys the variable range hopping model. The characteristic temperatures, resistance prefactor, and density of localized states and activation energies depend on the concentration of MWCNTs and can be described by power laws with exponents of 0.470, −1.292, −0.470 and 0.118, respectively. The novel nanocomposite cotton fabric developed in this study exhibits suitable electrical and thermal properties and good long-term electrical stability, which make the nanocomposite cotton fabric a potential flexible conductor with a wide range of electrical conductivities, making it suitable for various applications.
first_indexed 2024-03-11T08:58:31Z
format Article
id doaj.art-08b21da72afd4ff1a1e05458bd03c53c
institution Directory Open Access Journal
issn 2073-4352
language English
last_indexed 2024-03-11T08:58:31Z
publishDate 2023-01-01
publisher MDPI AG
record_format Article
series Crystals
spelling doaj.art-08b21da72afd4ff1a1e05458bd03c53c2023-11-16T19:54:44ZengMDPI AGCrystals2073-43522023-01-0113219210.3390/cryst13020192Highly Conductive Flexible Conductor Based on PEDOT:PSS/MWCNTs Nano CompositeFahad Alhashmi Alamer0Department of Physics, Faculty of Applied Science, Umm AL-Qura University, Al Taif Road, Makkah 24382, Saudi ArabiaFlexible textiles with strong electrical conductivities have enormous potential as active components in wearable electronics. In this study, we fabricated highly flexible electrical conductors based on cotton fabrics using multiwalled carbon nanotubes (MWCNTs) and poly(3,4-ethylenedioxythiophene)/poly(styrenesulfonate) (PEDOT:PSS) nanocomposites. We propose that mixing and drop-casting with different amounts of MWCNTs and a fixed amount of doped PEDOT:PSS using a cotton fabric provides a wide range of conductivities depending on the amount of MWCNTs in the mixture. Scanning electron microscopy (SEM) confirmed that the distribution of MWCNTs in the PEDOT:PSS films coated the surface of the cotton fabric, thereby increasing its electrical conductivity. We found that the amount of MWCNTs significantly affected the electrical properties of the nanocomposite cotton in two ways. First, the sheet resistance of the nanocomposite cotton decreased from 78.35 Ω/□ to 2.86 Ω/□ when the concentration of the nanocomposite was increased from 9.21 wt% to 60.27 wt%. This implies that the electrical properties of the nanocomposite cotton can be adjusted by controlling the amount of MWCNTs in the blend. Moreover, we found that the relationship between the sheet resistance and nanocomposite concentration obeys the power law with an exponent α ~ 1.676. Second, the study of the effect of temperature on the resistance indicates that the conductive nanocomposite exhibits semiconductor behavior in the temperature range 24–120 °C and obeys the variable range hopping model. The characteristic temperatures, resistance prefactor, and density of localized states and activation energies depend on the concentration of MWCNTs and can be described by power laws with exponents of 0.470, −1.292, −0.470 and 0.118, respectively. The novel nanocomposite cotton fabric developed in this study exhibits suitable electrical and thermal properties and good long-term electrical stability, which make the nanocomposite cotton fabric a potential flexible conductor with a wide range of electrical conductivities, making it suitable for various applications.https://www.mdpi.com/2073-4352/13/2/192flexible conductornanocompositeMWCNTsPEDOT:PSSsheet resistanceVRH
spellingShingle Fahad Alhashmi Alamer
Highly Conductive Flexible Conductor Based on PEDOT:PSS/MWCNTs Nano Composite
Crystals
flexible conductor
nanocomposite
MWCNTs
PEDOT:PSS
sheet resistance
VRH
title Highly Conductive Flexible Conductor Based on PEDOT:PSS/MWCNTs Nano Composite
title_full Highly Conductive Flexible Conductor Based on PEDOT:PSS/MWCNTs Nano Composite
title_fullStr Highly Conductive Flexible Conductor Based on PEDOT:PSS/MWCNTs Nano Composite
title_full_unstemmed Highly Conductive Flexible Conductor Based on PEDOT:PSS/MWCNTs Nano Composite
title_short Highly Conductive Flexible Conductor Based on PEDOT:PSS/MWCNTs Nano Composite
title_sort highly conductive flexible conductor based on pedot pss mwcnts nano composite
topic flexible conductor
nanocomposite
MWCNTs
PEDOT:PSS
sheet resistance
VRH
url https://www.mdpi.com/2073-4352/13/2/192
work_keys_str_mv AT fahadalhashmialamer highlyconductiveflexibleconductorbasedonpedotpssmwcntsnanocomposite