School of Energy Science and Engineering, Central South University, Changsha410083, China.
ACS Appl Mater Interfaces. 2023 Jan 25;15(3):4122-4131. doi: 10.1021/acsami.2c20462. Epub 2023 Jan 15.
Visibly transparent radiative cooling (VTRC) shows great potential in energy-saving buildings or car glasses for lighting and cooling. How to balance the lighting and cooling performance is of significance to VTRC. In addition, the thermal radiative performance on the inner side should also be determined for cooling. Here, we designed a Janus VTRC coating consisting of a thermal emitter, PDMS, and a transparent near-infrared reflector, TiO/Ag/TiO. On the outer side, the visible transmittance = 0.70, while the solar reflectance ̅ = 0.40, and the thermal emittance in the atmospheric window ε̅ = 0.94 can be achieved experimentally. On the inner side, the thermal emittance ε̅ can be 0.90 or 0.01 depending on the substrate (glass or near-infrared reflector), which acts as the radiative conductor or barrier for energy saving in hot or cold internal situations. Compared with glass, the designed PDMS/NIR/glass achieves an average temperature drop of 14.6 °C experimentally. The energy-saving calculation based on seven cities in China shows that the VTRC coating can save 34-44% of the annual cooling energy consumption. This Janus visibly transparent radiative cooling technology with internal and external regulation provides a potential strategy for energy saving under the requirement of simultaneous lighting and cooling.
可见透明辐射冷却(VTRC)在节能建筑或汽车玻璃的照明和冷却方面具有很大的潜力。如何平衡照明和冷却性能对 VTRC 至关重要。此外,还需要确定内侧的热辐射性能以实现冷却。在这里,我们设计了一种由热发射器、PDMS 和透明近红外反射器 TiO/Ag/TiO 组成的双面 VTRC 涂层。在外侧,可见光透过率 = 0.70,太阳能反射率 ̅ = 0.40,在大气窗口的热发射率 ε̅ = 0.94 可以通过实验实现。在内侧,热发射率 ε̅可以根据基底(玻璃或近红外反射器)为 0.90 或 0.01,这取决于基底,基底充当热导体或热阻挡体,以实现内部热或冷环境下的节能。与玻璃相比,设计的 PDMS/NIR/glass 实验实现了平均 14.6°C 的温度下降。基于中国七个城市的节能计算表明,VTRC 涂层可以节省 34-44%的年度冷却能源消耗。这种具有内外调控的双面可见透明辐射冷却技术为同时照明和冷却的节能要求提供了一种潜在的策略。