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Designing radiative cooling metamaterials for passive thermal management by particle swarm optimization

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【作者】 闫申申刘岩王子兰晓华汪毅任捷

【Author】 Shenshen Yan;Yan Liu;Zi Wang;Xiaohua Lan;Yi Wang;Jie Ren;Center for Phononics and Thermal Energy Science, China-EU Joint Laboratory on Nanophononics, Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology, School of Physics Science and Engineering, Tongji University;Shanghai Research Institute for Intelligent Autonomous Systems, Tongji University;

【通讯作者】 王子;任捷;

【机构】 Center for Phononics and Thermal Energy Science, China-EU Joint Laboratory on Nanophononics, Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology, School of Physics Science and Engineering, Tongji UniversityShanghai Research Institute for Intelligent Autonomous Systems, Tongji University

【摘要】 The passive radiative cooling technology shows a great potential application on reducing the enormous global energy consumption. The multilayer metamaterials could enhance the radiative cooling performance. However, it is a challenge to design the radiative cooler. In this work, based on the particle swarm optimization(PSO) evolutionary algorithm, we develop an intelligent workflow in designing photonic radiative cooling metamaterials. Specifically, we design two 10-layer SiO2 radiative coolers doped by cylindrical MgF2 or air impurities, possessing high emissivity within the selective(8–13 μm) and broadband(8–25 μm) atmospheric transparency windows, respectively. Our two kinds of coolers demonstrate power density as high as 119 W/m2 and 132 W/m2 at the room temperature(300 K). Our scheme does not rely on the usage of special materials, forming high-performing metamaterials with conventional poor-performing components. This significant improvement of the emission spectra proves the effectiveness of our inverse design algorithm in boosting the discovery of high-performing functional metamaterials.

【Abstract】 The passive radiative cooling technology shows a great potential application on reducing the enormous global energy consumption. The multilayer metamaterials could enhance the radiative cooling performance. However, it is a challenge to design the radiative cooler. In this work, based on the particle swarm optimization(PSO) evolutionary algorithm, we develop an intelligent workflow in designing photonic radiative cooling metamaterials. Specifically, we design two 10-layer SiO2 radiative coolers doped by cylindrical MgF2 or air impurities, possessing high emissivity within the selective(8–13 μm) and broadband(8–25 μm) atmospheric transparency windows, respectively. Our two kinds of coolers demonstrate power density as high as 119 W/m2 and 132 W/m2 at the room temperature(300 K). Our scheme does not rely on the usage of special materials, forming high-performing metamaterials with conventional poor-performing components. This significant improvement of the emission spectra proves the effectiveness of our inverse design algorithm in boosting the discovery of high-performing functional metamaterials.

【基金】 Project supported by the National Natural Science Foundation of China (Grant No. 11935010);the Opening Project of Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2023年05期
  • 【分类号】TB34
  • 【下载频次】4
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