He Hualing, Qin Yi, Zhu Zhenyu, Jiang Qing, Ouyang Shengnan, Wan Yuhang, Qu Xueru, Xu Jie, Yu Zhicai
State Key Laboratory of New Textile Materials and Advanced Processing Technologies, School of Textile Science and Engineering, Wuhan Textile University, Wuhan, 430200, People's Republic of China.
National Local Joint Laboratory for Advanced Textile Processing and Clean Production, Hubei Key Laboratory of Biomass Fibers and Eco-Dyeing and Finishing, Wuhan Textile University, Wuhan, 430200, People's Republic of China.
Nanomicro Lett. 2023 Oct 13;15(1):226. doi: 10.1007/s40820-023-01200-8.
Firefighting protective clothing is a crucial protective equipment for firefighters to minimize skin burn and ensure safety firefighting operation and rescue mission. A recent increasing concern is to develop self-powered fire warning materials that can be incorporated into the firefighting clothing to achieve active fire protection for firefighters before the protective clothing catches fire on fireground. However, it is still a challenge to facilely design and manufacture thermoelectric (TE) textile (TET)-based fire warning electronics with dynamic surface conformability and breathability. Here, we develop an alternate coaxial wet-spinning strategy to continuously produce alternating p/n-type TE aerogel fibers involving n-type TiCT MXene and p-type MXene/SWCNT-COOH as core materials, and tough aramid nanofiber as protective shell, which simultaneously ensure the flexibility and high-efficiency TE power generation. With such alternating p/n-type TE fibers, TET-based self-powered fire warning sensors with high mechanical stability and wearability are successfully fabricated through stitching the alternating p-n segment TE fibers into aramid fabric. The results indicate that TET-based fire warning electronics containing 50 p-n pairs produce the open-circuit voltage of 7.5 mV with a power density of 119.79 nW cm at a temperature difference of 300 °C. The output voltage signal is then calculated as corresponding surface temperature of firefighting clothing based on a linear relationship between TE voltage and temperature. The fire alarm response time and flame-retardant properties are further displayed. Such self-powered fire warning electronics are true textiles that offer breathability and compatibility with body movement, demonstrating their potential application in firefighting clothing.
消防防护服是消防员的关键防护装备,可将皮肤烧伤降至最低,并确保安全的灭火行动和救援任务。最近越来越受到关注的是开发自供电火灾预警材料,这种材料可融入消防服中,以便在火场中防护服着火之前为消防员提供主动防火保护。然而,轻松设计和制造具有动态表面贴合性和透气性的基于热电(TE)纺织品(TET)的火灾预警电子器件仍然是一项挑战。在此,我们开发了一种交替同轴湿法纺丝策略,以连续生产交替的p/n型TE气凝胶纤维,其中涉及n型TiCT MXene和p型MXene/SWCNT-COOH作为核心材料,以及坚韧的芳纶纳米纤维作为保护壳,这同时确保了柔韧性和高效的TE发电。利用这种交替的p/n型TE纤维,通过将交替的p-n段TE纤维缝入芳纶织物中,成功制造出具有高机械稳定性和可穿戴性的基于TET的自供电火灾预警传感器。结果表明,包含50个p-n对的基于TET的火灾预警电子器件在300°C的温差下产生7.5 mV的开路电压,功率密度为119.79 nW cm。然后根据TE电压与温度之间的线性关系,将输出电压信号计算为消防服相应的表面温度。进一步展示了火灾报警响应时间和阻燃性能。这种自供电火灾预警电子器件是真正的纺织品,具有透气性且与身体运动兼容,展示了它们在消防服中的潜在应用。