Yang Siyan, Liu Jiazheng, Hoque Muhammad Jahidul, Huang Anxu, Chen Yiyang, Yang Wentao, Feng Jie, Miljkovic Nenad
Department of Mechanical Science and Engineering, The Grainger College of Engineering, University of Illinois Urbana-Champaign, Urbana, IL, 61801, USA.
Materials Research Laboratory, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Adv Mater. 2025 Feb;37(7):e2415237. doi: 10.1002/adma.202415237. Epub 2024 Dec 23.
To tackle the formidable challenges posed by extreme cold weather events, significant advancements have been made in developing functional surfaces capable of efficiently removing accreted ice. Nevertheless, many of these surfaces still require external energy input, such as electrical power, which raises concerns regarding their alignment with global sustainability goals. Over the past decade, increasing attention has been directed toward photothermal surface designs that harness solar energy-a resource available on Earth in quantities exceeding the total reserves of coal and oil combined. By converting solar energy into heat, these designs enable the transformation of the interfacial solid-solid contact (ice-substrate) into a liquid-solid contact (water-substrate), significantly reducing interfacial adhesion and facilitating rapid ice removal. This critical perspective begins by emphasizing the advantages of photothermal design over traditional de-icing methods. It then delves into an in-depth analysis of three primary photothermal mechanisms, examining how these principles have expanded the scope of de-icing technologies and contributed to advancements in photothermal surface design. Finally, key fundamental and technical challenges are identified, offering strategic guidelines for future research aimed at enabling practical, real-world applications.
为应对极端寒冷天气事件带来的巨大挑战,在开发能够有效去除积冰的功能性表面方面已取得了重大进展。然而,这些表面中的许多仍需要外部能量输入,如电力,这引发了人们对其与全球可持续发展目标一致性的担忧。在过去十年中,越来越多的注意力被导向利用太阳能的光热表面设计——太阳能是地球上一种储量超过煤炭和石油总储量的资源。通过将太阳能转化为热量,这些设计能够将界面固-固接触(冰-基底)转变为液-固接触(水-基底),显著降低界面附着力并促进快速除冰。本重要观点首先强调光热设计相对于传统除冰方法的优势。然后深入分析三种主要的光热机制,研究这些原理如何扩展了除冰技术的范围并推动了光热表面设计的进步。最后,确定了关键的基础和技术挑战,为旨在实现实际应用的未来研究提供了战略指导方针。