Park Sanghun, Pal Sudip Kumar, Otoufat Tohid, Kim Gunwoo
Biomedical Manufacturing Technology Center, Korea Institute of Industrial Technology, Yeongcheon 38822, Republic of Korea.
ACS Appl Mater Interfaces. 2023 Mar 29;15(12):16026-16033. doi: 10.1021/acsami.3c00143. Epub 2023 Mar 15.
Radiative cooling has attracted tremendous interest as it can tackle global warming by saving energy consumption in heating, ventilation, and air conditioning (HVAC) in buildings. Polymer materials play an important role in radiative cooling owing to their high infrared emissivity. Along this line, numerous studies on optically optimized geometries were carried out to enhance the selective wavelength absorption for high infrared emissivity; however, the polymer material itself relatively was not investigated and optimized enough. Herein, we investigate the infrared radiation (IR) absorption coefficient of various polymer types, and introduce a new concept of radiative-cooling composites. By dispersing the IR scattering medium in a polymer matrix, IR can be effectively scattered and attenuated by the polymer matrix. Indium tin oxide was utilized as the IR scattering medium in a cellulose acetate polymer matrix in this report. The window film was made with this composite and showed an effective cooling performance by outdoor thermal evaluation. This composite opens a new venue to endow materials with enhanced radiative-cooling property regardless of the polymer types.
辐射冷却因其能够通过节省建筑物供暖、通风和空调(HVAC)中的能源消耗来应对全球变暖而引起了极大关注。聚合物材料因其高红外发射率在辐射冷却中发挥着重要作用。沿着这条线,人们进行了大量关于光学优化几何结构的研究,以增强对高红外发射率的选择性波长吸收;然而,聚合物材料本身相对没有得到足够的研究和优化。在此,我们研究了各种聚合物类型的红外辐射(IR)吸收系数,并引入了辐射冷却复合材料的新概念。通过将红外散射介质分散在聚合物基体中,红外可以被聚合物基体有效地散射和衰减。在本报告中,氧化铟锡被用作醋酸纤维素聚合物基体中的红外散射介质。用这种复合材料制成的窗膜通过户外热评估显示出有效的冷却性能。这种复合材料为赋予材料增强的辐射冷却性能开辟了一个新途径,而与聚合物类型无关。