Zhao Jiaojiao, Zhou Jianhua, Li Hong, Xiao Anguo
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, Shaanxi, China; National Demonstration Center for Experimental Light Chemistry Engineering Education (Shaanxi University of Science and Technology), Xi'an 710021, Shaanxi, China.
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, Shaanxi, China; National Demonstration Center for Experimental Light Chemistry Engineering Education (Shaanxi University of Science and Technology), Xi'an 710021, Shaanxi, China.
Carbohydr Polym. 2023 Sep 15;316:121031. doi: 10.1016/j.carbpol.2023.121031. Epub 2023 May 23.
Wearable heaters have attracted growing attention for maintaining a relatively constant temperature of the human body in cold environments with near zero energy consumption. Herein, we developed a multifunctional laminated fabric with fascinating electro/solar-thermal conversion, thermal energy storage and thermal insulation properties. With cotton fabric as the substrate, MXene/polydimethylsiloxane (PDMS) conductive network was decorated on the upper layer, and carbon nanotube (CNT)/cellulose nanofiber (CNF)/paraffin (PA) aerogel phase change composites were assembled on the bottom layer. Attributed to the strong conductivity and light absorption of MXene and the light/thermal response of CNT and PA components, this wearable laminated fabric broke the limitation of intermittent solar photothermal heating, and integrated multiple heating modes to precisely heat the human body. Meanwhile, the low thermal conductivity of aerogel retarded heat loss. The laminated fabric can help people better adapt to a variety of complex and changeable environments such as cold winter, rainy days and nights. This study provides a promising and energy-efficient avenue for the development of all-day personal thermal management fabrics.
可穿戴加热器在寒冷环境中以近乎零能耗维持人体相对恒定温度方面受到了越来越多的关注。在此,我们开发了一种具有迷人的电/太阳能-热转换、热能存储和隔热性能的多功能层压织物。以上层装饰有MXene/聚二甲基硅氧烷(PDMS)导电网络的棉织物为基底,并在底层组装了碳纳米管(CNT)/纤维素纳米纤维(CNF)/石蜡(PA)气凝胶相变复合材料。由于MXene的高导电性和光吸收以及CNT和PA组分的光/热响应,这种可穿戴层压织物打破了间歇性太阳能光热加热的限制,并集成了多种加热模式以精确加热人体。同时,气凝胶的低导热率延缓了热量损失。该层压织物可以帮助人们更好地适应各种复杂多变的环境,如寒冷的冬天、雨天和夜晚。本研究为全天候个人热管理织物的开发提供了一条有前景且节能的途径。