Zhang Shichen, Xu Jiangtao
School of Innovation Design, Guangzhou Academy of Fine Arts, Guangzhou 510006, China.
College of Materials and Energy, South China Agricultural University, Guangzhou 510006, China.
Polymers (Basel). 2022 Dec 9;14(24):5401. doi: 10.3390/polym14245401.
The conductivity and sensing stability of yarn-based strain sensors are still challenges when it comes to practical applications. To address these challenges, surface engineering of polyurethane (PU) yarn was introduced to improve its surface hydrophilicity for better deposition of MXene nanosheets in its dispersion. The introduction of Ag nanoparticles via magnetron sputtering greatly improved the surface conductivity; meanwhile, the encapsulation of the PDMS protective layer effectively enhanced the sensing stability over 15,000 cycling process, as well as the working range with a gauge factor value over 700 under a strain range of 150-300%. Moreover, the exploration of its applications in human motion monitoring indicate that the prepared strain-sensing yarn shows great potential in detecting both tiny motions or large-scale movements of the human body, which will be suitable for further development into multifunctional smart wearable sensors or metaverse applications in the future.
在实际应用中,基于纱线的应变传感器的导电性和传感稳定性仍然是挑战。为了应对这些挑战,引入了聚氨酯(PU)纱线的表面工程,以提高其表面亲水性,以便在其分散体中更好地沉积MXene纳米片。通过磁控溅射引入银纳米颗粒大大提高了表面导电性;同时,聚二甲基硅氧烷(PDMS)保护层的封装有效地提高了在15000次循环过程中的传感稳定性,以及在150-300%应变范围内具有超过700的应变系数值的工作范围。此外,对其在人体运动监测中的应用探索表明,制备的应变传感纱线在检测人体的微小运动或大规模运动方面具有巨大潜力,这将适合未来进一步发展为多功能智能可穿戴传感器或元宇宙应用。