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Robust and highly-sensitive wearable human-machine interfaces enabled by mechanically interlocked LIG textiles via thermal lamination

  • Boru Du
  • , Yajie Hu
  • , Yuhan Guo
  • , Guantao Wang
  • , Pingping Hao
  • , Mingguang Han
  • , Xilun Ding
  • , Sida Luo*
  • *Corresponding author for this work
  • Beihang University

Research output: Contribution to journalArticlepeer-review

Abstract

Laser-induced graphene (LIG) provides a direct and scalable route to fabricate smart textiles with pressure-sensing capabilities, yet it often faces a trade-off between robust durability and high sensitivity due to the inherent fragility of laser-scribed structures. Here, we report a thermal-lamination strategy that creates a mechanical-interlocked interface between a thermoplastic polyurethane (TPU) film and a LIG layer patterned on aramid fabrics, enabling concurrent improvements in mechanical robustness and pressure sensitivity. Specifically, by first tailoring the LIG microstructure via laser-parameter optimization (2.5 W, 5 mm defocus) and subsequently integrating a TPU layer under optimized thermal conditions (150 °C, 0 MPa), the pressure sensitivity of the LIG sensor increases dramatically from 0.12 kPa−1 to 1.48 kPa−1, while simultaneously delivering a rapid response (<20 ms), a broad detection range (10 Pa–160 kPa), and excellent stability over 5000 cycles. Finally, we demonstrate a multifunctional smart textile wristband capable of continuous physiological monitoring, high-accuracy gesture recognition, and wrist-activity tracking, validating its potential for next generation wearable electronics and human-machine interfaces.

Original languageEnglish
Article number121838
JournalCarbon
Volume258
DOIs
StatePublished - 31 Jul 2026

Keywords

  • Human-machine interfaces
  • Laser-induced graphene
  • Smart textiles
  • Thermal lamination
  • Wearable electronics

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