Caratenuto Andrew, Leach Kyle, Liu Yang, Zheng Yi
Department of Mechanical and Industrial Engineering, Northeastern University, Boston, Massachusetts 02115, United States.
Department of Chemical Engineering, Northeastern University, Boston, Massachusetts 02115, United States.
ACS Appl Mater Interfaces. 2024 Mar 13;16(10):12717-12730. doi: 10.1021/acsami.4c01383. Epub 2024 Mar 1.
Passive radiative cooling materials, which provide cooling without consuming electricity, are widely recognized as an important technology for reducing greenhouse gas emissions and delivering thermal comfort to less industrialized communities. Optimizing thermal and optical properties is of primary importance for these materials, but for real-world utilization, ease of application and scalability also require significant emphasis. In this work, we embed the biomaterial hydroxyapatite, in the form of nanoscale fibers, within an oil-based medium to achieve passive cooling from an easy-to-apply paint-like solution. The chemical structure and bonding behaviors of this mixture are studied in detail using FTIR, providing transferable conclusions for pigment-like passive cooling solutions. By reflecting 95% of solar energy and emitting 92% of its radiative output through the atmospheric transparency window, this composite material realizes an average subambient cooling performance of 3.7 °C in outdoor conditions under a mean solar irradiance of 800 W m. The inflammability of the material provides enhanced durability as well as unique opportunities for recycling which promote circular economic practices. Finally, the surface structure can be easily altered to tune bonding behaviors and hydrophobicity, making it an ideal passive cooling coating candidate for outdoor applications.
被动辐射冷却材料无需耗电即可实现冷却,作为减少温室气体排放并为工业化程度较低的社区提供热舒适性的一项重要技术,已得到广泛认可。对于这些材料而言,优化其热学和光学性能至关重要,但就实际应用而言,易于应用和可扩展性也需要得到充分重视。在这项工作中,我们将纳米级纤维形式的生物材料羟基磷灰石嵌入油基介质中,以便从一种易于应用的类似涂料的溶液中实现被动冷却。利用傅里叶变换红外光谱仪(FTIR)详细研究了这种混合物的化学结构和键合行为,为类似颜料的被动冷却解决方案提供了可借鉴的结论。通过反射95%的太阳能并通过大气透明窗口发射92%的辐射输出,这种复合材料在平均太阳辐照度为800 W/m的室外条件下实现了3.7℃的平均低于环境温度的冷却性能。该材料的易燃性提高了其耐久性,同时也为回收利用提供了独特机遇,从而促进循环经济实践。最后,其表面结构可以轻松改变,以调节键合行为和疏水性,使其成为户外应用理想的被动冷却涂层候选材料。