材料科学
光热治疗
涂层
制作
多孔性
纳米技术
胶粘剂
复合材料
粘附
纳米颗粒
超疏水涂料
基质(水族馆)
光热效应
俘获
多孔介质
蒸发
纳米材料
光学涂层
工作(物理)
纳米结构
表面能
压力(语言学)
作者
Chenguang Lu,Wenzong Li,Xu Wang,Lemin Zhang,Jiahui Chu,Ning‐Ning Sun,Zetian Xing,Zhongyi Wang,Shile Feng,Yu Sun,Yahua Liu
标识
DOI:10.1021/acsami.5c21683
摘要
Photothermal anti-icing surfaces harness solar energy for efficient deicing and hold promise for preventing ice accretion. However, under prolonged severe conditions, ice buildup is inevitable, making low ice adhesion a critical safeguard for effective removal. Here, we report a yeast-fermented porous coating (YFPC) that integrates strong photothermal performance with interfacial crack promotion to overcome these limitations. The coating is fabricated scalably in a single step by spraying a silicone/carbon nanoparticles (CNPs)/yeast emulsion: CNPs assemble at droplet interfaces to generate a hierarchical light-trapping texture, while yeast fermentation forms the porous structure. This design endows the YFPC with exceptional photothermal performance, demonstrating a 55 °C temperature increase under one-sun irradiation. Crucially, the porous structure within the coating amplifies stress heterogeneity at the ice-coating interface, which triggers multiple microcracks along the adhesive interface, enabling rapid ice detachment with minimal force. By combining efficient solar-driven heating with crack-assisted ice release in a scalable fabrication process, this work establishes a new strategy for high-performance anti-icing coatings.
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