Research Article

Tailoring Admittance, Conductance, and Susceptance in TPU/Activated Carbon Films for Flexible Electronics

Volume: 12 Number: 3 September 30, 2025
EN

Tailoring Admittance, Conductance, and Susceptance in TPU/Activated Carbon Films for Flexible Electronics

Abstract

In this study, thermoplastic polyurethane (TPU) composites with varying amounts of activated carbon (AC) (0, 1, 3, 5, 7, and 10 wt%) were fabricated using a solvent-casting method. Scanning electron microscopy (SEM) revealed homogeneous filler dispersion up to intermediate loadings (3-5 wt%), while higher contents (7-10 wt%) led to surface cracks and particle agglomerations. Fourier-transform infrared spectroscopy (FTIR) results showed no evidence of strong chemical bonding between AC particles and the TPU matrix, although minor spectral shifts were consistent with weak physical interactions. Thermal gravimetric analysis (TGA) indicated improved thermal stability at higher AC loadings. Tensile tests showed enhanced mechanical strength up to 5 wt%, though flexibility decreased at higher concentrations (7–10 wt%). Electrical characterization (admittance (Y), conductance (G), and susceptance (B)) from 1 kHz–10 MHzrevealed a clear percolation threshold (~7 wt%), where conductivity sharply increased due to conductive network formation. At 10 MHz, the composite with 10 wt% AC exhibited the highest performance (Y ~114.8 µS, G ~58.8 µS, |B| ~114.1 µS). Jonscher power-law analysis indicated hopping conduction below 7 wt% AC, whereas the 10 wt% sample transitioned into quasi-metallic conduction behavior due to conductive network formation.

Keywords

Supporting Institution

Kastamonu University Scientific Research Projects Coordination Department

Project Number

KUBAP-01/2022-28

References

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Details

Primary Language

English

Subjects

Condensed Matter Physics (Other), Electronic Sensors

Journal Section

Research Article

Publication Date

September 30, 2025

Submission Date

June 25, 2025

Acceptance Date

July 31, 2025

Published in Issue

Year 2025 Volume: 12 Number: 3

APA
Kurnaz, S. (2025). Tailoring Admittance, Conductance, and Susceptance in TPU/Activated Carbon Films for Flexible Electronics. Gazi University Journal of Science Part A: Engineering and Innovation, 12(3), 788-797. https://doi.org/10.54287/gujsa.1726229
AMA
1.Kurnaz S. Tailoring Admittance, Conductance, and Susceptance in TPU/Activated Carbon Films for Flexible Electronics. GU J Sci, Part A. 2025;12(3):788-797. doi:10.54287/gujsa.1726229
Chicago
Kurnaz, Sedat. 2025. “Tailoring Admittance, Conductance, and Susceptance in TPU Activated Carbon Films for Flexible Electronics”. Gazi University Journal of Science Part A: Engineering and Innovation 12 (3): 788-97. https://doi.org/10.54287/gujsa.1726229.
EndNote
Kurnaz S (September 1, 2025) Tailoring Admittance, Conductance, and Susceptance in TPU/Activated Carbon Films for Flexible Electronics. Gazi University Journal of Science Part A: Engineering and Innovation 12 3 788–797.
IEEE
[1]S. Kurnaz, “Tailoring Admittance, Conductance, and Susceptance in TPU/Activated Carbon Films for Flexible Electronics”, GU J Sci, Part A, vol. 12, no. 3, pp. 788–797, Sept. 2025, doi: 10.54287/gujsa.1726229.
ISNAD
Kurnaz, Sedat. “Tailoring Admittance, Conductance, and Susceptance in TPU Activated Carbon Films for Flexible Electronics”. Gazi University Journal of Science Part A: Engineering and Innovation 12/3 (September 1, 2025): 788-797. https://doi.org/10.54287/gujsa.1726229.
JAMA
1.Kurnaz S. Tailoring Admittance, Conductance, and Susceptance in TPU/Activated Carbon Films for Flexible Electronics. GU J Sci, Part A. 2025;12:788–797.
MLA
Kurnaz, Sedat. “Tailoring Admittance, Conductance, and Susceptance in TPU Activated Carbon Films for Flexible Electronics”. Gazi University Journal of Science Part A: Engineering and Innovation, vol. 12, no. 3, Sept. 2025, pp. 788-97, doi:10.54287/gujsa.1726229.
Vancouver
1.Sedat Kurnaz. Tailoring Admittance, Conductance, and Susceptance in TPU/Activated Carbon Films for Flexible Electronics. GU J Sci, Part A. 2025 Sep. 1;12(3):788-97. doi:10.54287/gujsa.1726229