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基于复合纳米多孔纤维的柔性辐射冷却纺织品用于个人热管理。

Flexible Radiative Cooling Textiles Based on Composite Nanoporous Fibers for Personal Thermal Management.

机构信息

MIIT Key Laboratory of Thermal Control of Electronic Equipment, School of Energy and Power Engineering, Nanjing University of Science and Technology, Nanjing, Jiangsu 210094, China.

出版信息

ACS Appl Mater Interfaces. 2023 Apr 12;15(14):17848-17857. doi: 10.1021/acsami.3c00252. Epub 2023 Mar 28.

Abstract

Passive radiative cooling textiles can reflect sunlight and dissipate heat directly to the outside space without any energy input. However, radiative cooling textiles with high performance, large scalability, cost effectiveness, and high biodegradability are still uncommon. Herein, we exploit a porous fiber-based radiative cooling textile (PRCT) via nonsolvent-induced phase separation and scalable roll-to-roll electrospinning technology. Nanopores are introduced into single fibers, and the pore size can be accurately optimized by managing the relative humidity of the spinning environment. The anti-ultraviolet radiation and superhydrophobicity of textiles were improved by the introduction of core-shell silica microspheres. An optimized PRCT yields a strong solar reflectivity of 98.8% and atmospheric window emissivity of 97%, which results in a sub-ambient temperature drop of 4.5 °C, with the solar intensity over 960 W·m and 5.5 °C at night. For personal thermal management, it is demonstrated that the PRCT can obtain a temperature drop of 7.1 °C compared to the bare skin under direct sunlight. Given the excellent optical and cooling properties, flexibility, and self-cleaning property, PRCT was demonstrated to be a potential candidate for commercial applications in multifarious complex scenarios to afford a style for global decarbonization.

摘要

被动式辐射冷却纺织品可以在不输入任何能量的情况下将阳光反射并直接散发到外部空间。然而,具有高性能、大尺寸可扩展性、成本效益和高生物降解性的辐射冷却纺织品仍然很少见。在此,我们通过非溶剂诱导相分离和可扩展的卷对卷静电纺丝技术开发了一种多孔纤维基辐射冷却纺织品(PRCT)。纳米孔被引入到单根纤维中,并且通过管理纺丝环境的相对湿度可以精确地优化孔径。通过引入核壳结构的二氧化硅微球,提高了纺织品的抗紫外线辐射和超疏水性。经过优化的 PRCT 具有 98.8%的强太阳光反射率和 97%的大气窗口发射率,在 960 W·m 以上的太阳强度和夜间 5.5 °C 的条件下,可实现环境温度降低 4.5 °C。对于个人热管理,PRCT 在阳光直射下与裸露皮肤相比可获得 7.1 °C 的温度下降。鉴于其出色的光学和冷却性能、灵活性和自清洁性能,PRCT 有望成为商业应用的潜在候选者,适用于各种复杂场景,为全球脱碳提供一种解决方案。

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