辐射传输
环境科学
发射率
玻璃
大气科学
红外窗口
材料科学
纬度
全球变暖
辐射冷却
工程物理
光学
气象学
气候变化
红外线的
物理
地质学
复合材料
海洋学
天文
作者
Zhengui Zhou,Rong Liu,Zhen Huang,Bin Hu,Yi Long
出处
期刊:Advanced Science
[Wiley]
日期:2025-01-10
卷期号:12 (9): e2414192-e2414192
被引量:8
标识
DOI:10.1002/advs.202414192
摘要
Abstract Traditional window glazing, with inherently adverse energy‐efficient optical properties, leads to colossal energy losses. Energy‐saving glass requires a customized optical design for different climate zones. Compared with the widely researched radiative cooling technology which is preferable to be used in low‐altitude hot regions; conversely in high‐latitude cold regions, high solar transmittance ( T sol ) and low mid‐infrared thermal emissivity ( ε MIR ) are the key characteristics of high‐performance radiative warming window glass, while the current low‐emissivity (low‐e) glass is far from ideal. To address this issue, Drude's theory is used to numerically design a near‐ideal film with specified electron density ( n e ) and electron mobility ( µ e ). The fabricated hydrogen‐doped indium oxide (IHO) could achieve high T sol (0.836) and low ε MIR (0.117). Energy‐saving simulations further reveal a substantial decrease in annual heating energy consumption up to 6.6% across high‐latitude regions (climate zones 6 to 8), translating to a corresponding reduction in CO 2 emissions (20.0 kg m −2 ), outperforming 1165 high performance commercial low‐e glass. This radiative warming glass holds the promise of making a significant contribution to sustainable building energy savings specifically for high‐latitude cold regions, advancing the goal of carbon neutrality.
科研通智能强力驱动
Strongly Powered by AbleSci AI