材料科学
微球
复合数
辐射传输
玻璃微球
复合材料
化学工程
辐射冷却
纳米技术
光学
气象学
物理
工程类
作者
Jiefeng Li,Ming Fu,Heling Zhang,Chenhui Wei,Dawei He,Yongsheng Wang
标识
DOI:10.1002/adom.202402846
摘要
Abstract Microspheres dispersed in composites exhibit excellent infrared emissivity for radiative cooling applications, which reflect sunlight and passively dissipate heat into space without electricity. In this study, hierarchical microspheres (HMs) with a two‐tier structure, composed of SiO 2 , TiO 2 ‐coated SiO 2 , BaSO 4 , or PNIPAM, are incorporated into PDMS‐based composites. These microspheres feature larger spheres assembled from submicrometer‐scale nanoparticles and are fabricated via microfluidics to enhance radiative cooling performance. SiO 2 HMs not only boost visible light reflection and exhibit structural color through a photonic stop band but also achieve an average emissivity of 97.55% in the atmospheric window. Both experimental and simulated results show that HMs enhance the emissivity performance of the composite material compared with solid SiO 2 microspheres of the same diameter. Additionally, applying TiO 2 coating to SiO 2 HMs further increases the overall emissivity to 98.05%. Incorporating BaSO 4 HMs also increased the average visible reflectivity to 96.56%, while maintaining superior infrared emissivity at 97.58%. The inclusion of PNIPAM spheres enabled temperature‐responsive transmissivity, with the composite materials containing PNIPAM and SiO 2 HMs preserving high infrared emissivity in the atmospheric window. These HM structures exhibit excellent solar reflectivity and thermal emission, making them effective for radiative cooling.
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