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Industry-Scalable Reusable Textile Electrodes for Neurostimulation Applications

Merwa Al-Rasheed, Emily Lam, Mohammad Jambar, Jean Paul Ilogon, Sandra Gardner, Ladan Eskandarian, Amirali Toossi· Myant Inc. · University of Toronto · University of Alberta · iSMART (Edmonton)· Advanced Healthcare Materials · 2025

Key finding

Fully textile neurostimulation electrodes (stainless steel + PEDOT-coated) matched hydrogel performance, with no degradation after ≥30 wash cycles and functional integrity after 1,000 stretch cycles at 50% of break strain.

Abstract

Neurostimulation delivers electrical pulses to modulate neuromuscular activity. Commonly used in medical interventions from pain relief to rehabilitation, neurostimulation typically uses manually placed hydrogel electrodes over the treated region. However, this method limits interventions requiring frequent, long-term daily use. To address this, novel fully textile electrodes are developed using industrial programmable knitting machines. These electrodes are designed to be washable, reusable, flexible, and breathable, with embedded interconnects. Textile electrodes are made of yarns with stainless steel and PEDOT-coated stainless steel conductive components. The electrodes' performance are compared with gel electrodes, characterizing impedance, sensorimotor stimulation thresholds, recruitment of induced movements, sensation levels, and perceived sensations. The effects of residential wash cycles and continuous use duration are also investigated. The proposed electrodes are found to perform similarly to hydrogel electrodes in all characterized metrics. No degradation in electrode performance is found after at least 30 wash cycles. Electrodes remained functionally intact after 1000 cycles of stretch loading at 50% of break strain. The textile electrodes consistently induced comfortable sensorimotor responses for at least six hours after donning. The proposed textile electrodes offer a novel and effective solution for neurostimulation interventions, paving the way for integration into smart garments and long-term wearable health technologies.

What this proves at MyantX

Stimulation electrodes have to survive more than sensing ones, and this study proves textile ones can: fully knitted, machine-produced electrodes matched hydrogel performance with no degradation after 30+ washes and stayed functional after 1,000 stretch cycles at 50% of break strain. It is the durability evidence behind our neurostimulation garment work, the Neurostimulation and Textile EMG modalities, and the therapy claims across defense, rehabilitation, worker safety, and therapeutics. This is what makes wearable stimulation reusable rather than disposable.

This research backs

Cite this paper

Merwa Al-Rasheed, Emily Lam, Mohammad Jambar, Jean Paul Ilogon, Sandra Gardner, Ladan Eskandarian, Amirali Toossi. Industry-Scalable Reusable Textile Electrodes for Neurostimulation Applications.” Advanced Healthcare Materials, 2025. https://doi.org/10.1002/adhm.202401642

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