典型文献
Sub-ambient full-color passive radiative cooling under sunlight based on efficient quantum-dot photoluminescence
文献摘要:
Daytime radiative cooling with high solar reflection and mid-infrared emission offers a sustainable way for cooling without energy consumption.However,so far sub-ambient daytime radiative coolers typically possess white/silver color with limited aesthetics and applications.Although various colored radiative cooling designs have been pursued previously,multi-colored daytime radiative cooling to a temperature below ambient has not been realized as the solar thermal effect in the visible range lead to significant thermal load.Here,we demonstrate that photoluminescence(PL)based colored radiative coolers(PCRCs)with high internal quantum efficiency enable sub-ambient full-color cooling.As an example of experimental demonstration,we develop a scalable electrostatic-spinning/inkjet printing approach to realize the sub-ambient multi-colored radiative coolers based on quantum-dot photoluminescence.The unique features of obtained PCRCs are that the quantum dots atop convert the ultraviolet-visible sunlight into emitted light to minimize the solar-heat generation,and cellulose acetate based nanofibers as the underlayer that strongly reflect sunlight and radiate thermal load.As a result,the green,yellow and red colors of PCRCs achieve temperatures of 5.4-2.2℃below ambient under sunlight(peak solar irradi-ance>740 W m-2),respectively.With the excellent cooling performance and scalable process,our designed PCRC opens a promising pathway towards colorful applications and scenarios of radiative cooling.
文献关键词:
中图分类号:
作者姓名:
Xueyang Wang;Qian Zhang;Shuaihao Wang;Chunqi Jin;Bin Zhu;Yucong Su;Xunyi Dong;Jie Liang;Zhenda Lu;Lin Zhou;Wei Li;Shining Zhu;Jia Zhu
作者机构:
National Laboratory of Solid State Microstructures,College of Engineering and Applied Sciences,Jiangsu Key Laboratory of Artificial Functional Materials,Collaborative Innovation Center of Advanced Microstructures,Nanjing University,Nanjing 210093,China;GPL Photonics Lab,State Key Laboratory of Applied Optics,Changchun Institute of Optics,Fine Mechanics and Physics,Chinese Academy of Sciences,Changchun 130033,China
文献出处:
引用格式:
[1]Xueyang Wang;Qian Zhang;Shuaihao Wang;Chunqi Jin;Bin Zhu;Yucong Su;Xunyi Dong;Jie Liang;Zhenda Lu;Lin Zhou;Wei Li;Shining Zhu;Jia Zhu-.Sub-ambient full-color passive radiative cooling under sunlight based on efficient quantum-dot photoluminescence)[J].科学通报(英文版),2022(18):1874-1881
A类:
PCRCs,PCRC
B类:
Sub,ambient,full,passive,radiative,cooling,sunlight,efficient,quantum,photoluminescence,Daytime,high,solar,reflection,mid,infrared,emission,offers,sustainable,without,energy,consumption,However,far,sub,daytime,coolers,typically,possess,white,silver,limited,aesthetics,applications,Although,various,colored,designs,have,been,pursued,previously,multi,below,has,not,realized,thermal,effect,visible,range,lead,significant,load,Here,demonstrate,that,PL,internal,efficiency,enable,example,experimental,demonstration,develop,scalable,electrostatic,spinning,inkjet,printing,approach,unique,features,obtained,dots,atop,convert,ultraviolet,into,emitted,minimize,heat,generation,cellulose,acetate,nanofibers,underlayer,strongly,radiate,result,green,yellow,colors,achieve,temperatures,peak,irradi,respectively,With,excellent,performance,process,our,designed,opens,promising,pathway,towards,colorful,scenarios
AB值:
0.527915
相似文献
机标中图分类号,由域田数据科技根据网络公开资料自动分析生成,仅供学习研究参考。