材料科学
光伏
辐射冷却
吞吐量
纳米技术
纳米颗粒
复合材料
胶体
光电子学
光伏系统
化学工程
气象学
生态学
电信
物理
计算机科学
工程类
生物
无线
作者
YongDeok Cho,Hyeon Ho Kim,S.H. Ahn,Jaewon Lee,Jieun Lee,Kwang‐Jin Kim,Soyul Kwak,H. Lee,Kyungsik Choi,Kyonghwa Song,Seungwoo Lee
标识
DOI:10.1002/adfm.202510833
摘要
Abstract Particulate thermal metamaterials, consisting of randomly dispersed thermally emissive nanoparticles (NPs) within polymeric films, have attracted significant attention due to their coating processibility, making them highly compatible with large‐area, cost‐effective manufacturing of radiative coolers with high thermal emissivity. However, conventional particulate thermal metamaterials face challenges such as NP aggregation, leading to high haze, and restricting maximum NP loading. Additionally, their opacity and limited colorations make them less suitable for outdoor applications where aesthetics are important. Herein, we present crystallized NP‐based opaline thermal metamaterials. This approach enabled us to achieve highly transparent, colorful, and large‐areas radiative coolers with a negligible scattering even at relatively high NP volume fractions, thus significantly enhancing daytime radiative cooling efficiency. Also, by introducing a polymeric topcoat, we achieve superior cooling and transparency using only half the NP loading. Finally, we integrate opaline thermal metamaterials into neutral‐colored silicon photovoltaics (PVs) to reduce their operating temperature, resulting in increased open‐circuit voltage and improved overall power conversion efficiency. Together with sufficient mechanical strength and environmental resistance, our approach not only makes them suitable for use as radiative cooling exterior films of outdoor PVs but also provides a practical method to enhance PV efficiency and durability through effective thermal management.
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