Cheng Ningbo, Wang Zhaohui, Lin Yanyan, Li Xueqin, Zhang Yufei, Ding Chengfeng, Wang Chao, Tan Jing, Sun Feifei, Wang Xianfeng, Yu Jianyong, Ding Bin
Shanghai Frontiers Science Research Center of Advanced Textiles, College of Fashion and Design, Donghua University, Shanghai, 200051, China.
Innovation Center for Textile Science and Technology, Donghua University, Shanghai, 201620, China.
Adv Mater. 2024 Aug;36(33):e2403223. doi: 10.1002/adma.202403223. Epub 2024 Jun 29.
Incorporating passive radiative cooling and heating into personal thermal management has attracted tremendous attention. However, most current thermal management materials are usually monofunctional with a narrow temperature regulation range, and lack breathability, softness, and stretchability, resulting in a poor wearer experience and limited application scenarios. Herein, a breathable dual-mode leather-like nanotextile (LNT) with asymmetrical wrinkle photonic microstructures and Janus wettability for highly efficient personal thermal management is developed via a one-step electrospinning technique. The LNT is synthesized by self-bonding a hydrophilic cooling layer with welding fiber networks onto a hydrophobic photothermal layer, constructing bilayer wrinkle structures that offer remarkable optical properties, a wetting gradient, and unique textures. The resultant LNT exhibits efficient cooling capacity (22.0 °C) and heating capacity (22.1 °C) under sunlight, expanding the thermal management zone (28.3 °C wider than typical textiles). Additionally, it possesses favorable breathability, softness, stretchability, and sweat-wicking capability. Actual wearing tests demonstrate that the LNT can provide a comfortable microenvironment for the human body (1.6-8.0 °C cooler and 1.0-7.1 °C warmer than typical textiles) in changing weather conditions. Such a wearable dual-mode LNT presents great potential for personal thermal comfort and opens up new possibilities for all-weather smart clothing.
将被动辐射冷却和加热纳入个人热管理已引起了极大关注。然而,目前大多数热管理材料通常是单功能的,温度调节范围狭窄,并且缺乏透气性、柔软性和拉伸性,导致穿着体验不佳且应用场景有限。在此,通过一步电纺技术开发了一种具有不对称皱纹光子微结构和Janus润湿性的透气双模式皮革状纳米织物(LNT),用于高效的个人热管理。LNT是通过将具有焊接纤维网络的亲水性冷却层自粘合到疏水性光热层上合成的,构建了具有卓越光学性能、润湿梯度和独特纹理的双层皱纹结构。所得的LNT在阳光下表现出高效的冷却能力(22.0°C)和加热能力(22.1°C),扩大了热管理区域(比典型纺织品宽28.3°C)。此外,它具有良好的透气性、柔软性、拉伸性和排汗能力。实际穿着测试表明,在变化的天气条件下,LNT可以为人体提供一个舒适的微环境(比典型纺织品凉爽1.6 - 8.0°C,温暖1.0 - 7.1°C)。这种可穿戴的双模式LNT在个人热舒适性方面具有巨大潜力,并为全天候智能服装开辟了新的可能性。