Li Keqiao, Li Meng, Lin Chongjia, Liu Gongze, Li Yang, Huang Baoling
Department of Mechanical and Aerospace Engineering, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, 999077, China.
The Hong Kong University of Science and Technology Foshan Research Institute for Smart Manufacturing, Clear Water Bay, Kowloon, Hong Kong, 999077, China.
Small. 2023 May;19(19):e2206149. doi: 10.1002/smll.202206149. Epub 2023 Feb 19.
Textiles with radiative cooling/warming capabilities provide a green and effective solution to personal thermal comfort in different climate scenarios. However, developing multiple-mode textiles for wearing in changing climates with large temperature variation remains a challenge. Here a Janus textile is reported, comprising a polyethersulfone (PES)-Al O cooling layer optically coupled with a Ti C T warming layer, which can realize sub-ambient radiative cooling, solar warming, and active Joule heating. Owing to the intrinsically high refractive index of PES and the rational design of the fiber topology, the nanocomposite PES textile features a record high solar reflectance of 0.97. Accompanied by an infrared (IR) emittance of 0.91 in the atmospheric window, sub-ambient cooling of 0.5-2.5 °C is achieved near noontime in humid summer under ≈1000 W m solar irradiation in Hong Kong. The simulated skin covered with the textile is ≈10 °C cooler than that with white cotton. The Ti C T layer provides a high solar-thermal efficiency of ≈80% and a Joule heating flux of 66 W m at 2 V and 15 °C due to its excellent spectral selectivity and electrical conductivity. The switchable multiple working modes enable effective and adaptive personal thermal management in changing environments.
具有辐射冷却/加热功能的纺织品为不同气候场景下的个人热舒适度提供了一种绿色且有效的解决方案。然而,开发适用于温度变化较大的多变气候下穿着的多模式纺织品仍然是一项挑战。在此报道了一种双面织物,它由与TiC T加热层光学耦合的聚醚砜(PES)-Al O冷却层组成,可实现低于环境温度的辐射冷却、太阳能加热和有源焦耳加热。由于PES固有的高折射率和纤维拓扑结构的合理设计,纳米复合PES织物具有创纪录的0.97的高太阳反射率。在香港夏季潮湿环境中,在约1000 W m的太阳辐射下,中午时分在大气窗口的红外(IR)发射率为0.91的情况下,可实现0.5 - 2.5°C的低于环境温度的冷却。覆盖有该织物的模拟皮肤比白色棉质皮肤约低10°C。TiC T层由于其优异的光谱选择性和导电性,在2 V和15°C时提供约80%的高太阳能 - 热效率和66 W m的焦耳热通量。可切换的多种工作模式能够在变化的环境中实现有效的自适应个人热管理。