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Printable, self-healing and recyclable PEDOT:PSS/Polyurethane composites for durable bioelectronics

Jinsil Kim et Fabio Cicoira

Article de revue (2026)

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Abstract

The development of self-healing conductors that are simultaneously printable, recyclable, and resilient to severe mechanical damage remains a key challenge for flexible bioelectronic technologies. Here, we report a multifunctional composite based on poly(3,4-ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS) blended with a custom-designed polyurethane (PU) incorporating dynamic disulfide bonds and hydrogen-bonding motifs. This materials design enables autonomous room-temperature healing from scratches, cuts, and punctures, without external stimuli, while preserving mechanical integrity and electrical continuity. The composite is processable from green solvents and can be spin-coated or printed into uniform, transparent, and highly stretchable films, as well as free-standing membranes transferable to diverse substrates. Optimized PEDOT:PSS/PU/Gly films exhibit a functional conductivity (~15 S cm⁻¹), high stretchability (>650 %), strong self-adhesion, and stable performance under repeated deformation. Importantly, the material supports both mechanical reuse and chemical recycling over at least 15 cycles, retaining more than 90 % of its mechanical strength and fully recovering its electrical conductivity. Mechanistic investigations reveal that reversible disulfide exchange and hydrogen bond reformation govern rapid network reorganization and efficient self-repair. Printed electronic tattoos and free-standing electrodes fabricated from this composite deliver low-impedance and high-fidelity electrocardiogram (ECG) recordings. Together, these results establish a sustainable and versatile materials platform that advances self-healing conductors beyond superficial damage, providing a practical pathway toward durable and recyclable bioelectronic materials and devices.

Matériel d'accompagnement:
Département: Département de génie chimique
Organismes subventionnaires: NSERC, FRQNT, Trottier Energy Institute
Numéro de subvention: RGPIN-2025-05607
URL de PolyPublie: https://publications.polymtl.ca/76270/
Titre de la revue: Materials Horizons
Maison d'édition: Royal Society of Chemistry
DOI: 10.1039/d6mh00177g
URL officielle: https://doi.org/10.1039/d6mh00177g
Date du dépôt: 05 mai 2026 11:20
Dernière modification: 12 août 2026 05:45
Citer en APA 7: Kim, J., & Cicoira, F. (2026). Printable, self-healing and recyclable PEDOT:PSS/Polyurethane composites for durable bioelectronics. Materials Horizons, 33 pages. https://doi.org/10.1039/d6mh00177g

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