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October 1, 2025Nature Communications17 citationsOpen Access

Washable heat-resistant and inkjet-printed devices on cotton fabric for wearable applications

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KBKyubin BaeBHBowoong HeoKHKyuhyun Hwang

Key Points

  • Inkjet-printed e-textiles demonstrated high conductivity of 1.25 × 10⁵ S m⁻¹, enhancing wearable device functionality.
  • Reactive silver ink combined with carbon nanotubes enables high-resolution patterning on poly-L-lysine coated cotton fabric.
  • The fabricated e-textiles maintain performance despite bending, ironing, and washing, highlighting their durability.
  • Inherent heat resistance of cotton fabric supports high-temperature applications, making these textiles suitable for various uses.

Abstract

Electronic textiles (e-textiles) face challenges in maintaining fabric properties and achieving high electrical conductivity with screen printing and particle-based inkjet printing. While particle-free reactive inks enable high-resolution patterning with sufficient electrical conductivity, their application on cellulose-based fibers is hindered by negatively charged surfaces. This study introduces inkjet-printed e-textiles using reactive silver ink and carbon nanotube ink on poly-L-lysine-coated cotton fabric. Carbon nanotubes establish a conductive network that promotes silver ion reduction, yielding densely packed nanoparticles with enhanced conductivity (1.25 × 10⁵ S m⁻¹). The resulting composite functions as a resistive tactile sensor with high sensitivity (6.02 kPa⁻¹) due to the hierarchical structure of cotton fabric. In addition, the inherent heat resistance of cotton facilitates its high-temperature resistance during heating. In this work, the fabricated e-textiles maintain performance through bending, ironing, and washing, inferring our printing technique as a promising strategy for wearable devices. Developing electronic textiles which balance conductivity and high-resolution patterning is challenging due to the charged character of cellulose-based fibers. Here the authors report a silver-carbon nanotube ink which can be inkjet-printed onto poly-L-lysine coated cotton fabric for electronic textiles.

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Cite This Study

Bae et al. (2025) studied this question.

synapsesocial.com/papers/68dd7e78fe798ba2fc495f48https://doi.org/10.1038/s41467-025-63636-3
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