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Journal of Materials ScienceVolume 58, Issue 4, January 2023, Pages 1680-1693

Wearable humidity sensor embroidered on a commercial face mask and its electrical properties(Article)(Open Access)

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  • University of Novi Sad, Faculty of Technical Sciences, Trg Dositeja Obradovića 6, Novi Sad, 21000, Serbia

Abstract

Owing to the rapid development in the field of e-textile-based flexible and portable sensors, the present work demonstrates a fully textile-based stretchable face mask humidity sensor which was created using digital embroidery technique. The design of the sensor was comprised of interdigitated structured electrodes made up of polymer core-based conductive silver-coated threads and hygroscopic threads embedded between them. The fabricated sensor performed well towards moisture detection in accordance with the principle where resistance of the face mask sensor decreased with the increase in the relative humidity along with the changing operational frequency in the range from 1 Hz to 200 kHz. The electrical response (resistance, impedance, capacitance and phase angle) of the novel thread-based sensor towards change in relative humidity was recorded and showed in the present work. The embroidery of polymer-based threads onto the face mask towards humidity sensing offers a novel wearable platform for more extended biomedical applications for detection of various breath biomarkers and thus early diagnosis of diseases. © 2023, The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.

Indexed keywords

Engineering controlled terms:DiagnosisFunctional polymersHumidity sensorsSmart textilesWearable sensors
Engineering uncontrolled termsElectrical responseFabricated sensorsFace masksFlexible sensorMoisture detectionOperational frequencyPhase anglesPolymer basedPortable sensorsWearable humidity sensor
Engineering main heading:Medical applications

Funding details

Funding sponsor Funding number Acronym
Horizon 2020 Framework Programme
See opportunities by H2020
854194H2020
  • 1

    This research was funded through the European Union’s Horizon 2020 research and innovation program under Grant Agreement No. 854194.

  • ISSN: 00222461
  • CODEN: JMTSA
  • Source Type: Journal
  • Original language: English
  • DOI: 10.1007/s10853-022-08135-2
  • Document Type: Article
  • Publisher: Springer

  Sinha, A.; University of Novi Sad, Faculty of Technical Sciences, Trg Dositeja Obradovića 6, Novi Sad, Serbia;
© Copyright 2023 Elsevier B.V., All rights reserved.

Cited by 6 documents

Chen, R. , Liu, S. , Zhang, C.
Laser Fabrication of Humidity Sensors on Ethanol-Soaked Polyimide for Fully Contactless Respiratory Monitoring
(2024) ACS Applied Materials and Interfaces
Baysal, G.
A review on textile-based humidity sensors for wearable physical monitoring
(2024) International Journal of Clothing Science and Technology
Sekertekin, Y. , Gokcen, D.
Fully flexible impedance-based pressure sensing via nanocomposites of polyvinyl alcohol filled with multiwalled carbon nanotubes, graphene nanoplatelets and silver nanoparticles
(2023) Journal of Materials Science: Materials in Electronics
View details of all 6 citations
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