荧光
辐射传输
热的
萃取(化学)
材料科学
散射
吸收(声学)
光散射
色度
蒙特卡罗方法
光电子学
热辐射
分布式光线跟踪
光子
航程(航空)
光学
辐射
纳米颗粒
雷
可见光谱
工作(物理)
全内反射
作者
Chenglong She,Yi Zhang,Minghao Dong,Xiaopeng Bai,Chenxi Wang,Fan Yang,Xiaobo Yin
标识
DOI:10.1002/advs.202510643
摘要
Abstract To mitigate solar heating in colored objects, fluorescent coloration has been proposed as an alternative to traditional absorptive pigments. However, the Stokes‐shifted photons generated by fluorophores predominantly remain trapped by total internal reflection (TIR), increasing the parasitic solar absorption and the radiative thermal load. This work introduces a scattering‐enhanced light extraction strategy that overcomes the TIR limit in fluorescent films. A sequential quadratic programming‐driven optimization model establishes the theoretical minimum radiative thermal load for both traditional and fluorescent‐colored surfaces. Results reveal that while traditional absorption‐based color achieves only 19.3% sub‐ambient cooling chromaticity in the CIE 1931 color space, light extraction technology expands the range from 26.7% to 64.9% for fluorescent color. TiO 2 nanoparticles enhance light extraction through multiple Mie‐scattering, with Monte Carlo ray‐tracing simulation identifying an optimal 0.5 wt% TiO 2 nanoparticle concentration yielding 85.9% light extraction efficiency, significantly outperforming the TiO 2 ‐free fluorescent film (25.3%) and a higher 15 wt.% concentration (66.6%). Outdoor experiments confirm the optimal 0.5 wt% sample exhibits a 4.1 °C temperature decrease compared to the control (0 wt.%) sample. This approach offers cost‐effective scalability advantages over microtexture‐based light extraction methods.
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