Yu Zhicai, Wan Yuhang, Zhou Mi, Mia Md Hasib, Huo Siqi, Huang Lele, Xu Jie, Jiang Qing, Zheng Zhenrong, Hu Xiaodong, He Hualing
State Key Laboratory of New Textile Materials and Advanced Processing, School of Textile Science and Engineering, Wuhan Textile University, Wuhan, 430200, People's Republic of China.
School of Engineering, Centre for Future Materials, University of Southern Queensland, Springfield Central, 4300, Australia.
Nanomicro Lett. 2025 Apr 14;17(1):214. doi: 10.1007/s40820-025-01728-x.
Enhancing the firefighting protective clothing with exceptional thermal barrier and temperature sensing functions to ensure high fire safety for firefighters has long been anticipated, but it remains a major challenge. Herein, inspired by the human muscle, an anisotropic fire safety aerogel (ACMCA) with precise self-actuated temperature monitoring performance is developed by combining aramid nanofibers with eicosane/MXene to form an anisotropically oriented conductive network. By combining the two synergies of the negative temperature-dependent thermal conductive eicosane, which induces a high-temperature differential, and directionally ordered MXene that establishes a conductive network along the directional freezing direction. The resultant ACMCA exhibited remarkable thermoelectric properties, with S values reaching 46.78 μV K and κ values as low as 0.048 W m K at room temperature. Moreover, the prepared anisotropic aerogel ACMCA exhibited electrical responsiveness to temperature variations, facilitating its application in intelligent temperature monitoring systems. The designed anisotropic aerogel ACMCA could be incorporated into the firefighting clothing as a thermal barrier layer, demonstrating a wide temperature sensing range (50-400 °C) and a rapid response time for early high-temperature alerts (~ 1.43 s). This work provides novel insights into the design and application of temperature-sensitive anisotropic aramid nanofibers aerogel in firefighting clothing.
长期以来,人们一直期待增强具有卓越热障和温度传感功能的消防防护服,以确保消防员的高消防安全,但这仍然是一项重大挑战。在此,受人体肌肉启发,通过将芳纶纳米纤维与二十烷/ MXene相结合,形成各向异性取向的导电网络,开发出一种具有精确自驱动温度监测性能的各向异性消防安全气凝胶(ACMCA)。通过结合负温度依赖性导热二十烷的两种协同作用,其会产生高温差,以及沿定向冷冻方向建立导电网络的定向有序MXene。所得的ACMCA表现出显著的热电性能,在室温下S值达到46.78 μV K,κ值低至0.048 W m K。此外,制备的各向异性气凝胶ACMCA对温度变化表现出电响应性,便于其在智能温度监测系统中的应用。设计的各向异性气凝胶ACMCA可以作为热障层并入消防服中,展示出宽温度传感范围(50 - 400°C)和早期高温警报的快速响应时间(约1.43秒)。这项工作为温度敏感型各向异性芳纶纳米纤维气凝胶在消防服中的设计和应用提供了新的见解。