Research Article

Investigation of carbon black grades and multiwall carbon nanotube hybridization for the development of electrically conductive polyamide 6-based nanocomposite filaments

Volume: 5 Number: 2 July 31, 2025
EN TR

Investigation of carbon black grades and multiwall carbon nanotube hybridization for the development of electrically conductive polyamide 6-based nanocomposite filaments

Abstract

The development of electrically conductive polymer filaments has gained significant attention for applications in smart textiles and flexible electronics. This study systematically investigates the influence of different carbon black (CB) grades and their hybridization with multiwall carbon nanotubes (MWCNTs) on the electrical and processing properties of polyamide 6 (PA6) based nanocomposite filaments. Three commercial CB grades were evaluated through morphological analysis, mixing energy measurements, and electrical resistivity characterization. Light microscopy analysis revealed that Vulcan XC72 exhibited superior dispersion homogeneity compared to XC MAX22 and XC615. The mixing energy calculations demonstrated that XC72 maintained consistent processing behavior, with energy requirements ranging from 25.067 J/cm³ at 1 wt% to 25.790 J/cm³ at 5 wt% loading. Electrical resistivity measurements showed significant differences in percolation behavior, with XC72 achieving 2.33E+03 ohm·cm at 13 wt%. Based on these findings, XC72 was selected for developing PA6/CB and PA6/MWCNT/CB hybrid nanocomposite filaments. While PA6/CB filaments showed insufficient conductivity, PA6/MWCNT filaments achieved 2.94E+00 ohm·cm at 10 wt%, and hybrid filaments demonstrated intermediate conductivity of 7.28E+00 ohm·cm. SEM analysis revealed the formation of interconnected networks where MWCNTs effectively bridged CB particles, explaining the enhanced conductivity of hybrid systems. This study provides crucial insights for developing cost-effective conductive polymer filaments through systematic filler selection and processing optimization.

Keywords

References

  1. Gómez J, Villaro E, Karagiannidis P, Elmarakbi A (2020) Effects of chemical structure and morphology of graphene-related materials (GRMs) on melt processing and properties of GRM/polyamide-6 nanocomposites. Results Mater. https://doi.org/10.1016/j.rinma.2020.100105
  2. Völtz LR, Geng S, Teleman A, Oksman K (2022) Influence of dispersion and orientation on polyamide-6 cellulose nanocomposites manufactured through liquid-assisted extrusion. Nanomaterials. https://doi.org/10.3390/nano12050818
  3. LePere M (2020) Mechanical and electrical properties of 3D printed PA6 nanocomposites. NASA/SAMPE. https://doi.org/10.33599/nasampe/s.20.0255
  4. Zhao M, Yi D, Yang R (2017) Enhanced mechanical properties and fire retardancy of polyamide 6 nanocomposites based on interdigitated crystalline montmorillonite–melamine cyanurate. J Appl Polym Sci https://doi.org/10.1002/app.46039
  5. Brigandi PJ, Cogen JM, Wolf CA, Reffner J, Pearson RA (2015) Kinetic and thermodynamic control in conductive PP/PMMA/EAA carbon black composites. J Appl Polym Sci. https://doi.org/10.1002/app.42134
  6. Sethi D, Ram R, Khastgir D (2017) Analysis of electrical and dynamic mechanical response of conductive elastomeric composites. Polym Compos. https://doi.org/10.1002/pc.24429
  7. Khandavalli S, Park JH, Kariuki NN, Myers DJ, Stickel JJ, Hurst KE et al (2018) Rheological investigation on the microstructure of fuel cell catalyst inks. ACS Appl Mater Interfaces. https://doi.org/10.1021/acsami.8b15039
  8. Lin G, Yu B, Hong W, Yu K, Hu Y (2020) Preparation of graded microporous layers for enhanced water management in fuel cells. J Appl Polym Sci. https://doi.org/10.1002/app.49564

Details

Primary Language

English

Subjects

Wearable Materials, Composite and Hybrid Materials, Polymers and Plastics, Fiber Technology

Journal Section

Research Article

Publication Date

July 31, 2025

Submission Date

February 15, 2025

Acceptance Date

April 8, 2025

Published in Issue

Year 2025 Volume: 5 Number: 2

APA
Kaplan, M. (2025). Investigation of carbon black grades and multiwall carbon nanotube hybridization for the development of electrically conductive polyamide 6-based nanocomposite filaments. Journal of Innovative Engineering and Natural Science, 5(2), 534-544. https://doi.org/10.61112/jiens.1640685
AMA
1.Kaplan M. Investigation of carbon black grades and multiwall carbon nanotube hybridization for the development of electrically conductive polyamide 6-based nanocomposite filaments. JIENS. 2025;5(2):534-544. doi:10.61112/jiens.1640685
Chicago
Kaplan, Müslüm. 2025. “Investigation of Carbon Black Grades and Multiwall Carbon Nanotube Hybridization for the Development of Electrically Conductive Polyamide 6-Based Nanocomposite Filaments”. Journal of Innovative Engineering and Natural Science 5 (2): 534-44. https://doi.org/10.61112/jiens.1640685.
EndNote
Kaplan M (July 1, 2025) Investigation of carbon black grades and multiwall carbon nanotube hybridization for the development of electrically conductive polyamide 6-based nanocomposite filaments. Journal of Innovative Engineering and Natural Science 5 2 534–544.
IEEE
[1]M. Kaplan, “Investigation of carbon black grades and multiwall carbon nanotube hybridization for the development of electrically conductive polyamide 6-based nanocomposite filaments”, JIENS, vol. 5, no. 2, pp. 534–544, July 2025, doi: 10.61112/jiens.1640685.
ISNAD
Kaplan, Müslüm. “Investigation of Carbon Black Grades and Multiwall Carbon Nanotube Hybridization for the Development of Electrically Conductive Polyamide 6-Based Nanocomposite Filaments”. Journal of Innovative Engineering and Natural Science 5/2 (July 1, 2025): 534-544. https://doi.org/10.61112/jiens.1640685.
JAMA
1.Kaplan M. Investigation of carbon black grades and multiwall carbon nanotube hybridization for the development of electrically conductive polyamide 6-based nanocomposite filaments. JIENS. 2025;5:534–544.
MLA
Kaplan, Müslüm. “Investigation of Carbon Black Grades and Multiwall Carbon Nanotube Hybridization for the Development of Electrically Conductive Polyamide 6-Based Nanocomposite Filaments”. Journal of Innovative Engineering and Natural Science, vol. 5, no. 2, July 2025, pp. 534-4, doi:10.61112/jiens.1640685.
Vancouver
1.Müslüm Kaplan. Investigation of carbon black grades and multiwall carbon nanotube hybridization for the development of electrically conductive polyamide 6-based nanocomposite filaments. JIENS. 2025 Jul. 1;5(2):534-4. doi:10.61112/jiens.1640685

Cited By


by.png
Journal of Innovative Engineering and Natural Science by İdris Karagöz is licensed under CC BY 4.0