显色指数
天顶
计算机科学
发射率
材料科学
玻璃
宽带
日光
热的
色温
可扩展性
光学
透射率
窗口(计算)
光电子学
亮度
太阳能
黑体辐射
光学工程
视角
照度
调制(音乐)
电子工程
渲染(计算机图形)
智能材料
太阳增益
发光二极管
红外线的
热舒适性
相变材料
红外窗口
作者
Keunhyuk Ryu,Guanya Wang,Vijay Shankar Sridharan,Shancheng Wang,Zhili Dong,Shuang Zhang,Yi Long
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-09-15
卷期号:19 (38): 34429-34437
被引量:2
标识
DOI:10.1021/acsnano.5c13103
摘要
Windows are responsible for nearly 50% of the building's heat loss. Most current smart window designs solely consider the season-accompanied temperature change but often overlook the solar zenith angle variation. This work addresses this critical gap by leveraging the potential of dynamic metasurfaces and engineering the angular and thermal dual-responsiveness into structural engineering via scalable and industrially compatible mesh printing and spray-coating. The season-dependent solar/thermal radiation dual-modulation smart window, which is composed of a structured reconfigured vanadium dioxide (VO2) array-based Fabry-Perot resonator, dynamically responds to variations in both solar zenith angle and temperature. The proposed smart window achieves promising luminance transmittance (36.8%), solar modulation (30.8%), and broadband infrared emissivity modulation (0.4). It outperforms the commercial low-emissivity glass and the state-of-the-art designs in energy-saving performance simulation and daylight illumination. Furthermore, the device shows promising color rendering performance and near-daylight color temperature, ensuring superior visual comfort and color neutrality over conventional smart windows. The integration of metasurfaces and phase-change materials provides a promising strategy to dynamically modulate optical responses across different wavelengths, which could have potentially wide applications not limited to energy-saving building facades.
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