Kim Hannah, Gao Yiwei, Moran Ethan, Howle Annyn, McSherry Sean, Cira Spencer, Lenert Andrej
University of Michigan, Ann Arbor, MI, USA.
Nanophotonics. 2023 Dec 14;13(5):621-627. doi: 10.1515/nanoph-2023-0611. eCollection 2024 Mar.
We present a radiative cooling material capable of enhancing albedo while reducing ground surface temperatures beneath fielded bifacial solar panels. Electrospinning a layer of polyacrylonitrile nanofibers, or nanoPAN, onto a polymer-coated silver mirror yields a total solar reflectance of 99 %, an albedo of 0.96, and a thermal emittance of 0.80. The combination of high albedo and high emittance is enabled by wavelength-selective scattering induced by the hierarchical morphology of nanoPAN, which includes both thin fibers and bead-like structures. During outdoor testing, the material outperforms the radiative cooling power of a state-of-the-art control by ∼20 W/m and boosts the photocurrent produced by a commercial silicon cell by up to 6.4 mA/cm compared to sand. These experiments validate essential characteristics of a high-albedo radiative-cooling reflector with promising potential applications in thermal and light management of fielded bifacial panels.
我们展示了一种辐射冷却材料,它能够在提高反照率的同时降低安装在现场的双面太阳能电池板下方的地面温度。在聚合物涂层银镜上静电纺丝一层聚丙烯腈纳米纤维(nanoPAN),可产生99%的总太阳反射率、0.96的反照率和0.80的热发射率。nanoPAN的分级形态(包括细纤维和珠状结构)引起的波长选择性散射实现了高反照率和高发射率的结合。在户外测试中,与沙子相比,该材料的辐射冷却功率比最先进的对照物高出约20W/m²,并使商用硅电池产生的光电流提高了6.4mA/cm²。这些实验验证了一种高反照率辐射冷却反射器的基本特性,该反射器在现场双面面板的热管理和光管理方面具有潜在的应用前景。