| Literature DB >> 34914515 |
Kechao Tang1,2,3, Kaichen Dong1,2, Jiachen Li2,4, Madeleine P Gordon4,5, Finnegan G Reichertz6, Hyungjin Kim2,7, Yoonsoo Rho8, Qingjun Wang1,2, Chang-Yu Lin1, Costas P Grigoropoulos8, Ali Javey2,7, Jeffrey J Urban5, Jie Yao1,2, Ronnen Levinson9, Junqiao Wu1,2,4.
Abstract
The sky is a natural heat sink that has been extensively used for passive radiative cooling of households. A lot of focus has been on maximizing the radiative cooling power of roof coating in the hot daytime using static, cooling-optimized material properties. However, the resultant overcooling in cold night or winter times exacerbates the heating cost, especially in climates where heating dominates energy consumption. We approached thermal regulation from an all-season perspective by developing a mechanically flexible coating that adapts its thermal emittance to different ambient temperatures. The fabricated temperature-adaptive radiative coating (TARC) optimally absorbs the solar energy and automatically switches thermal emittance from 0.20 for ambient temperatures lower than 15°C to 0.90 for temperatures above 30°C, driven by a photonically amplified metal-insulator transition. Simulations show that this system outperforms existing roof coatings for energy saving in most climates, especially those with substantial seasonal variations.Entities:
Year: 2021 PMID: 34914515 DOI: 10.1126/science.abf7136
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728