Quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling

This work theoretically demonstrates a quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling. In the design process, by inserting well-defined materials with different refractive-index profiles in suitable layers, there are absorption bands at different regions and th...

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Main Authors: Yeqing Zhu, Yong-Hong Ye, Dong Wang, Yurong Cao
Format: Article
Language:English
Published: AIP Publishing LLC 2021-02-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/5.0035138
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spelling doaj-849115f7cd974fe28bbf5ee6265354f62021-03-02T21:48:04ZengAIP Publishing LLCAIP Advances2158-32262021-02-01112025109025109-810.1063/5.0035138Quasi-periodic selective multilayer emitter for sub-ambient daytime radiative coolingYeqing Zhu0Yong-Hong Ye1Dong Wang2Yurong Cao3School of Computer and Electronic Information, Nanjing Normal University, Nanjing 210023, ChinaSchool of Computer and Electronic Information, Nanjing Normal University, Nanjing 210023, ChinaSchool of Computer and Electronic Information, Nanjing Normal University, Nanjing 210023, ChinaSchool of Computer and Electronic Information, Nanjing Normal University, Nanjing 210023, ChinaThis work theoretically demonstrates a quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling. In the design process, by inserting well-defined materials with different refractive-index profiles in suitable layers, there are absorption bands at different regions and the absorption bands are enhanced and broad in atmospheric transparency windows. Combined with the interference effects of the surface and the high reflectivity of Ag, the solar reflectance of the emitter is maximal in the solar spectrum. The influence of different nonradiative heat exchanges and the ambient air temperatures on the cooling performance of the multilayer emitter are calculated. At the same time, the mechanism of radiative cooling is analyzed. All the results show that the proposed emitter can effectively achieve sub-ambient daytime radiative cooling. Due to the superior durability and mechanical robustness of the multilayer emitter, it may be a key element in the realization of energy-efficient radiative cooling devices.http://dx.doi.org/10.1063/5.0035138
collection DOAJ
language English
format Article
sources DOAJ
author Yeqing Zhu
Yong-Hong Ye
Dong Wang
Yurong Cao
spellingShingle Yeqing Zhu
Yong-Hong Ye
Dong Wang
Yurong Cao
Quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling
AIP Advances
author_facet Yeqing Zhu
Yong-Hong Ye
Dong Wang
Yurong Cao
author_sort Yeqing Zhu
title Quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling
title_short Quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling
title_full Quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling
title_fullStr Quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling
title_full_unstemmed Quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling
title_sort quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2021-02-01
description This work theoretically demonstrates a quasi-periodic selective multilayer emitter for sub-ambient daytime radiative cooling. In the design process, by inserting well-defined materials with different refractive-index profiles in suitable layers, there are absorption bands at different regions and the absorption bands are enhanced and broad in atmospheric transparency windows. Combined with the interference effects of the surface and the high reflectivity of Ag, the solar reflectance of the emitter is maximal in the solar spectrum. The influence of different nonradiative heat exchanges and the ambient air temperatures on the cooling performance of the multilayer emitter are calculated. At the same time, the mechanism of radiative cooling is analyzed. All the results show that the proposed emitter can effectively achieve sub-ambient daytime radiative cooling. Due to the superior durability and mechanical robustness of the multilayer emitter, it may be a key element in the realization of energy-efficient radiative cooling devices.
url http://dx.doi.org/10.1063/5.0035138
work_keys_str_mv AT yeqingzhu quasiperiodicselectivemultilayeremitterforsubambientdaytimeradiativecooling
AT yonghongye quasiperiodicselectivemultilayeremitterforsubambientdaytimeradiativecooling
AT dongwang quasiperiodicselectivemultilayeremitterforsubambientdaytimeradiativecooling
AT yurongcao quasiperiodicselectivemultilayeremitterforsubambientdaytimeradiativecooling
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