Rheological Properties and Inkjet Printability of a Green Silver-Based Conductive Ink for Wearable Flexible Textile Antennas

Author:

Boumegnane Abdelkrim12ORCID,Douhi Said23,Batine Assia12ORCID,Dormois Thibault4ORCID,Cochrane Cédric4ORCID,Nadi Ayoub2ORCID,Cherkaoui Omar2,Tahiri Mohamed1

Affiliation:

1. Organic Synthesis and Extraction Laboratory (OSEV), Ain Chock’s Faculty of Sciences, Hassan II University, Casablanca B.P 5366, Morocco

2. Textile Materials Research Laboratory (REMTEX), Higher School of Textile and Clothing Industries (ESITH), Casablanca 20230, Morocco

3. Laboratory of Physics of Condensed Matter (LPMC), Faculty of Sciences Ben M’Sik, Hassan II University, Casablanca 2000, Morocco

4. École Nationale Supérieure des Arts et Industries Textiles—ENSAIT, ULR 2461—GEMTEX—Génie et Matériaux Textiles, University of Lille, F-59000 Lille, France

Abstract

The development of e-textiles necessitates the creation of highly conductive inks that are compatible with precise inkjet printing, which remains a key challenge. This work presents an innovative, syringe-based method to optimize a novel bio-sourced silver ink for inkjet printing on textiles. We investigate the relationships between inks’ composition, rheological properties, and printing behavior, ultimately assessing the electrical performance of the fabricated circuits. Using Na–alginate and polyethylene glycol (PEG) as the suspension matrix, we demonstrate their viscosity depends on the component ratios. Rheological control of the silver nanoparticle-laden ink has become paramount for uniform printing on textiles. A specific formulation (3 wt.% AgNPs, 20 wt.% Na–alginate, 40 wt.% PEG, and 40 wt.% solvent) exhibits the optimal rheology, enabling the printing of 0.1 mm thick conductive lines with a low resistivity (8 × 10−3 Ω/cm). Our findings pave the way for designing eco-friendly ink formulations that are suitable for inkjet printing flexible antennas and other electronic circuits onto textiles, opening up exciting possibilities for the next generation of E-textiles.

Publisher

MDPI AG

Reference74 articles.

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2. McLoughlin, J., and Sabir, T. (2018). High-Performance Apparel, Woodhead Publishing.

3. Mondal, M.I.H. (2022). Protective Textiles from Natural Resources, Woodhead Publishing.

4. (2023, August 26). Smart Personal Protective Equipment (PPE): Current PPE Needs, Opportunities for Nanotechnology and e-Textiles—IOPscience. Available online: https://iopscience.iop.org/article/10.1088/2058-8585/ac32a9/meta.

5. Schneegass, S., and Amft, O. (2017). Smart Textiles: Fundamentals, Design, and Interaction, Springer International Publishing.

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