Electrical impedance spectroscopy for electro-mechanical characterization of conductive fabrics
- PMID: 24892493
- PMCID: PMC4118341
- DOI: 10.3390/s140609738
Electrical impedance spectroscopy for electro-mechanical characterization of conductive fabrics
Abstract
When we use a conductive fabric as a pressure sensor, it is necessary to quantitatively understand its electromechanical property related with the applied pressure. We investigated electromechanical properties of three different conductive fabrics using the electrical impedance spectroscopy (EIS). We found that their electrical impedance spectra depend not only on the electrical properties of the conductive yarns, but also on their weaving structures. When we apply a mechanical tension or compression, there occur structural deformations in the conductive fabrics altering their apparent electrical impedance spectra. For a stretchable conductive fabric, the impedance magnitude increased or decreased under tension or compression, respectively. For an almost non-stretchable conductive fabric, both tension and compression resulted in decreased impedance values since the applied tension failed to elongate the fabric. To measure both tension and compression separately, it is desirable to use a stretchable conductive fabric. For any conductive fabric chosen as a pressure-sensing material, its resistivity under no loading conditions must be carefully chosen since it determines a measurable range of the impedance values subject to different amounts of loadings. We suggest the EIS method to characterize the electromechanical property of a conductive fabric in designing a thin and flexible fabric pressure sensor.
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References
-
- Rehnby W., Gustafsson M., Skrifvars M. Coating of textile fabrics with conductive polymers for smart textile applications. Welcome Ambience'08. 2008:100–103.
-
- Ahmed D. Hybridization of Smart Textiles in Medical and Healthcare Management. Proceeding of the AUTEX 2009 World Textile Conference; İzmir, Turkey. 26–28 May 2009.
-
- Singh A.V., Rahman A., Kumar N.V.G.S., Aditi A.S., Galluzzi M., Bovio S., Barozzi S., Montani E., Parazzoli D. Bio-inspired approaches to design smart fabrics. Mater. Design. 2012;36:829–839.
-
- Bashir T. Ph.D. Thesis. University of Borås; Gothenburg, Sweden: Mar 8, 2013. Conjugated Polymer-based Conductive Fibers for Smart Textile Applications.
-
- Langenhove L.V. Smart Textiles for Medicine and Healthcare: Materials, Systems and Applications; Woodhead Publishing Series in Textiles. CRC Press; Boca Raton, FL, USA: 2007.
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