4.7 Article

A nano-structured bilayer asymmetric wettability textile for efficient personal thermal and moisture management in high-temperature environments

期刊

CHEMICAL ENGINEERING JOURNAL
卷 461, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2023.141919

关键词

Radiative cooling; Personal thermal and moisture management; Clothing thermal insulation; Directional perspiration

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Climate change has caused extremely hot weather conditions worldwide, leading to increased energy consumption for cooling buildings and posing threats to outdoor health and safety. Developing a wearable textile with thermal insulation, evaporative cooling, and radiative cooling capabilities is a major challenge. In this study, a bilayer asymmetric wettability cooling membrane (BAWCM) textile is prepared using cellulose aerogel and zinc oxide nanoparticles.
In recent years, climate change has led to extremely hot weather conditions in many parts of the world, which not only causes large amount of energy consumption for building space cooling, but also poses a great threat to the health and safety of people outdoors. A wearable textile that could simultaneously maximizing thermal insulation, facilitating evaporative cooling, and enhancing radiative cooling would play an important role for outdoor personal thermal and moisture management in high-temperature environments. However, developing such a textile with a relatively simple structure remains a huge challenge. Herein, a bilayer asymmetric wettability cooling membrane (BAWCM) textile composed of banana trees cellulose aerogel membrane (BTCAM) and thermoplastic polyurethane nanofibers doped with zinc oxide nanoparticles (ZnO-NPs/TPU) is prepared by freeze-drying and subsequent electrospinning. The BAWCM textile has good thermal insulation performance, thereby reducing heat input when the ambient temperature is higher than the human body temperature. Meanwhile, the textile possesses a high reflectance of 91.3 % in the 0.37-2.5 mu m wavelength range and an infrared emissivity of 90.2 % in the 8-13 mu m wavelength range. In outdoor test, it is demonstrated that the BAWCM textile can be as large as 9.3 degrees C cooler than cotton under direct sunlight. More importantly, the textile can effectively achieve directional perspiration to accelerate evaporative cooling, preventing sticky and hot sensation. Through the integration of excellent thermal insulation, enhanced radiative cooling, and continuous sweat wicking-drying capability, this novel textile exhibits significantly improved personal thermal and moisture management performances in high-temperature environments.

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