The effect of bending on laser-cut electro-textile inductors and capacitors attached on denim as wearable structures

Author:

Escobedo Pablo1,de Pablos-Florido Jaime2,Carvajal Miguel A234,Martínez-Olmos Antonio234,Capitán-Vallvey Luis F45,Palma Alberto J234ORCID

Affiliation:

1. Bendable Electronics and Sensing Technologies (BEST) Group, James Watt School of Engineering, University of Glasgow, UK

2. ECsens, Department of Electronics and Computer Technology, University of Granada, Spain

3. Sport and Health University Research Institute (iMUDS), University of Granada, Spain

4. Excellence Unit of Chemistry applied to Biomedicine and Environment of the University of Granada, Spain

5. ECsens, Department of Analytical Chemistry, University of Granada, Spain

Abstract

In this paper we present the design, fabrication and characterization of electro-textile inductor and capacitor patterns on denim fabric as a basis for the development of wearable e-textiles. Planar coil inductors have been harnessed as antenna structures for the development of near field communication tags with temperature sensing capability, while interdigitated electrode capacitors have been used as humidity sensors for wearable applications. The effect of bending in the electrical performance of such structures was evaluated, showing variations below 5% in both inductance and capacitance values for bending angles in the range of interest; that is, those fitting to human limbs. In the case of the fabricated near field communication tags, a shift in the resonance frequency below 1.7% was found, meaning that the e-textile tag would still be readable by a near field communication-enabled smartphone. In respect of the capacitive humidity sensor, we obtained a minimum capacitance variation of 40% for a relative humidity range from 10% to 90%. Measured thermal shift was below 5% in the range from 10 to 40℃. When compared with the 4% variation due to bending, it can be concluded that this capacitive structure can be harnessed as a humidity sensor even under bending strain conditions and moderate temperature variations. The development and characterization of such structures on denim fabrics, which is one of the most popular fabrics for everyday clothing, combined with the additional advantage of affordable and easy fabrication methodologies, means a further step towards the next generation of smart e-textile products.

Funder

Secretaría de Estado de Investigación, Desarrollo e Innovación

Ministerio de Educación, Cultura y Deporte

European Regional Development Fund

Publisher

SAGE Publications

Subject

Polymers and Plastics,Chemical Engineering (miscellaneous)

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