Kousis Ioannis, D'Amato Roberto, Pisello Anna Laura, Latterini Loredana
Environmental Applied Physics Lab (EAPLAB) at Interuniversity Research Center on Pollution and Environment (CIRIAF), University of Perugia, Via G. Duranti 63, Perugia 06125, Italy.
Nano4Light-Lab, Department of Chemistry, Biology and Biotechnology, University of Perugia, Via Elce di Sotto 8, Perugia 06123, Italy.
ACS Energy Lett. 2023 Jul 5;8(7):3239-3250. doi: 10.1021/acsenergylett.3c00905. eCollection 2023 Jul 14.
Traditional cooling and heating systems in residential buildings account for more than 15% of global electricity consumption and 10% of global emissions of greenhouse gases. Daytime radiative cooling (DRC) is an emerging passive cooling technology that has garnered significant interest in recent years due to its high cooling capability. It is expected to play a pivotal role in improving indoor and outdoor urban environments by mitigating surface and air temperatures while decreasing relevant energy demand. Yet, DRC is in its infancy, and thus several challenges need to be addressed to establish its efficient wide-scale application into the built environment. In this Perspective, we critically discuss the strategies and progress in materials development to achieve DRC and highlight the challenges and future paths to pave the way for real-life applications. Advances in nanofabrication in combination with the establishment of uniform experimental protocols, both in the laboratory/field and through simulations, are expected to drive economic increases in DRC.
住宅建筑中的传统制冷和供暖系统占全球电力消耗的15%以上,占全球温室气体排放量的10%。日间辐射制冷(DRC)是一种新兴的被动式制冷技术,近年来因其高制冷能力而备受关注。预计它将通过降低表面和空气温度,同时减少相关能源需求,在改善室内外城市环境方面发挥关键作用。然而,DRC尚处于起步阶段,因此要将其高效大规模应用于建筑环境,还需要应对若干挑战。在这篇视角文章中,我们批判性地讨论了实现DRC的材料开发策略和进展,并强调了挑战以及为实际应用铺平道路的未来方向。纳米制造技术的进步,以及在实验室/现场和通过模拟建立统一的实验方案,有望推动DRC的经济性提升。