Luo Shunhua, Liu Bohao, Hu Jinyong, Zhang Yong
School of Physics and Optoelectronics, Xiangtan University, Xiangtan 411105, PR China.
Hunan Institute of Advanced Sensing and Information Technology, Xiangtan University, Xiangtan 411105, PR China.
Anal Chem. 2025 May 13;97(18):9976-9984. doi: 10.1021/acs.analchem.5c00804. Epub 2025 Apr 28.
Flexible gas sensors are gaining increasing recognition for their potential applications in the realm of electronic skin and smart textiles. However, owing to the insufficient adhesion property between the organic flexible substrate, metal electrodes, and sensing film, traditional flexible sensors often suffer from terrible durability under intense bending or folding conditions. In this study, a flexible fabric ammonia (NH) sensor composed of an electrospun preoxidized polyacrylonitrile (PAN) fiber-based flexible substrate and an in situ self-assembled polyaniline (PANI) sensing film/electrode was rationally designed. Owing to the favorable adhesion capability on the polymer substrate, excellent conductivity, and outstanding sensitivity to NH, the in situ self-assembled PANI film endowed the sensor with exceptional flexibility. Meanwhile, the low elastic modulus of the fabric sensor guarantees its comfortable wearability. Apart from the superior sensing performances toward 2-50 ppm of NH, the fabricated fabric sensor revealed little response fluctuation (4%) to 10 ppm of NH under the bending angles from 0° to 180° and maintained negligible response changes (3.2%) under 1000 cycles of bending treatment with a bending angle of 120°. The designed fabric gas sensor is further developed into wearable devices for validating its versatility and reliability in multiscenario smart home applications. The design strategy presented here not only addresses the challenges associated with the durability of flexible sensors but also paves the way for the exploration of next-generation flexible gas sensors tailored across various wearable applications.
柔性气体传感器因其在电子皮肤和智能纺织品领域的潜在应用而越来越受到认可。然而,由于有机柔性基板、金属电极和传感膜之间的粘附性不足,传统柔性传感器在剧烈弯曲或折叠条件下往往耐久性较差。在本研究中,合理设计了一种由静电纺丝预氧化聚丙烯腈(PAN)纤维基柔性基板和原位自组装聚苯胺(PANI)传感膜/电极组成的柔性织物氨(NH₃)传感器。原位自组装的PANI膜由于对聚合物基板具有良好的粘附能力、优异的导电性以及对NH₃的出色灵敏度,赋予了传感器卓越的柔韧性。同时,织物传感器的低弹性模量保证了其穿着舒适性。除了对2 - 50 ppm的NH₃具有优异的传感性能外,所制备的织物传感器在0°至180°的弯曲角度下对10 ppm的NH₃显示出很小的响应波动(4%),并且在120°弯曲角度的1000次循环弯曲处理下保持可忽略不计的响应变化(3.2%)。所设计的织物气体传感器进一步发展成为可穿戴设备,以验证其在多场景智能家居应用中的多功能性和可靠性。这里提出的设计策略不仅解决了与柔性传感器耐久性相关的挑战,还为探索适用于各种可穿戴应用的下一代柔性气体传感器铺平了道路。