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一种通过卷对卷“缺陷”制造的可扩展微结构光子涂层,用于日间亚环境被动辐射冷却。

A Scalable Microstructure Photonic Coating Fabricated by Roll-to-Roll "Defects" for Daytime Subambient Passive Radiative Cooling.

作者信息

Liu Sipan, Sui Chenxi, Harbinson Myers, Pudlo Michael, Perera Himendra, Zhang Zhenzhen, Liu Ruguan, Ku Zahyun, Islam Md Didarul, Liu Yuxuan, Wu Ronghui, Zhu Yong, Genzer Jan, Khan Saad A, Hsu Po-Chun, Ryu Jong Eun

机构信息

Department of Mechanical and Aerospace Engineering, North Carolina State University, Raleigh, North Carolina 27603, United States.

Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois 60637, United States.

出版信息

Nano Lett. 2023 Sep 13;23(17):7767-7774. doi: 10.1021/acs.nanolett.3c00111. Epub 2023 Jul 24.

Abstract

The deep space's coldness (∼4 K) provides a ubiquitous and inexhaustible thermodynamic resource to suppress the cooling energy consumption. However, it is nontrivial to achieve subambient radiative cooling during daytime under strong direct sunlight, which requires rational and delicate photonic design for simultaneous high solar reflectivity (>94%) and thermal emissivity. A great challenge arises when trying to meet such strict photonic microstructure requirements while maintaining manufacturing scalability. Herein, we demonstrate a rapid, low-cost, template-free roll-to-roll method to fabricate spike microstructured photonic nanocomposite coatings with AlO and TiO nanoparticles embedded that possess 96.0% of solar reflectivity and 97.0% of thermal emissivity. When facing direct sunlight in the spring of Chicago (average 699 W/m solar intensity), the coatings show a radiative cooling power of 39.1 W/m. Combined with the coatings' superhydrophobic and contamination resistance merits, the potential 14.4% cooling energy-saving capability is numerically demonstrated across the United States.

摘要

深空的低温(约4K)提供了一种无处不在且取之不尽的热力学资源,可用于抑制冷却能耗。然而,在强烈的直射阳光下的白天实现低于环境温度的辐射冷却并非易事,这需要合理且精细的光子设计,以同时实现高太阳反射率(>94%)和热发射率。在试图满足如此严格的光子微结构要求的同时保持制造的可扩展性时,就会出现巨大的挑战。在此,我们展示了一种快速、低成本、无模板的卷对卷方法,用于制造嵌入AlO和TiO纳米颗粒的尖峰微结构光子纳米复合涂层,该涂层具有96.0%的太阳反射率和97.0%的热发射率。当在芝加哥的春季面对直射阳光时(平均太阳强度为699W/m),这些涂层的辐射冷却功率为39.1W/m。结合涂层的超疏水和抗污染优点,在美国各地通过数值模拟证明了其潜在的14.4%的冷却节能能力。

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