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Spectrally Selective Nanoparticle Mixture Coating for Passive Daytime Radiative Cooling

机译:用于被动白天辐射冷却的光谱选择性纳米颗粒混合物涂层

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摘要

Passive daytime radiative cooling, which is a process that removes excess heat to cold space as an infinite heat sink, is an emerging technology for applications that require thermal control. Among the different structures of radiative coolers, multilayer- and photonic-structured radiative coolers that are composed of inorganic layers still need to be simple to fabricate. Herein, we describe the fabrication of a nanoparticle-mixture-based radiative cooler that exhibits highly selective infrared emission and low solar absorption. Al2O3, SiO2, and Si3N4 nanoparticles exhibit intrinsic absorption in parts of the atmospheric transparency window; facile one-step spin coating of a mixture of these nanoparticles generates a surface with selective infrared emission, which can provide a more powerful cooling effect compared to broadband emitters. The nanoparticle-based radiative cooler exhibits an extremely low solar absorption of 4% and a highly selective emissivity of 88.7% within the atmospheric transparency window owing to the synergy of the optical properties of the material. The nanoparticle mixture radiative cooler produces subambient cooling of 2.8 degrees C for surface cooling and 1.0 degrees C for space cooling, whereas the Ag film exhibits an above-ambient cooling of 1.1 degrees C for surface cooling and 3.4 degrees C for space cooling under direct sunlight.
机译:被动式日间辐射冷却是一种将多余热量作为无限热阱转移到冷空间的过程,是一种新兴技术,适用于需要热控制的应用。在辐射冷却器的不同结构中,由无机层组成的多层结构和光子结构的辐射冷却器仍然需要易于制造。在此,我们描述了一种基于纳米颗粒混合物的辐射冷却器的制造,该冷却器具有高选择性红外发射和低太阳吸收。Al2O3、SiO2和Si3N4纳米颗粒在部分大气透明度窗口中表现出固有吸收;这些纳米颗粒混合物的简易一步旋涂可产生具有选择性红外发射的表面,与宽带发射器相比,其可提供更强大的冷却效果。基于纳米颗粒的辐射冷却器在大气透明窗口内表现出极低的4%太阳吸收率和88.7%的高选择性发射率,这是由于材料的光学特性的协同作用。纳米颗粒混合物辐射冷却器产生2.8摄氏度的亚环境冷却(表面冷却)和1.0摄氏度的空间冷却(空间冷却),而银膜在阳光直射下表现出1.1摄氏度的环境冷却和3.4摄氏度的空间冷却。

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