Robust photothermal superhydrophobic coating based on fluorinated epoxy resin and SiO₂/carbon black with highly efficient anti-icing performance

材料科学 复合材料 砂纸 涂层 光热治疗 超疏水涂料 接触角 环氧树脂 光热效应 纳米复合材料 润湿 复合数 磨损(机械) 固化(化学) 炭黑 薄脆饼 含氟聚合物 纳米颗粒 扫描电子显微镜 纳米尺度 表面能 二氧化硅 退火(玻璃) 光泽度(光学) 纳米技术 光学涂层 二氧化锆 惰性
作者
Xiaoshuang Li,Junfei Ou,Yating Hu,Fajun Wang,Xinzuo Fang,Aumber Abbas,Seyed Farshid Chini,Alidad Amirfazli
出处
期刊:Progress in Organic Coatings [Elsevier BV]
卷期号:216: 110214-110214
标识
DOI:10.1016/j.porgcoat.2026.110214
摘要

Superhydrophobic photothermal anti-icing coatings represent a crucial strategy for addressing outdoor icing challenges. However, they still face significant challenges regarding long-term durability and large-scale production. In this study, a facile and cost-effective one-step spraying strategy is proposed to construct a robust photothermal superhydrophobic composite coating based on a modified epoxy resin system. By introducing an epoxy oligomer grafted with perfluorodecyltrimethoxysilane and precisely regulating the synergistic ratio of 14 nm nanoscale silicon dioxide and carbon black, a dual-scale hierarchical superhydrophobic structure was successfully fabricated. The silicon dioxide nanoparticles act as physical spacers to effectively suppress carbon black agglomeration, which not only induces a light-trapping effect with an optical absorptance exceeding 96% to enhance solar energy harvesting, but also endows the coating with excellent superhydrophobicity (water contact angle of 169.2°, sliding angle of 1.7°). Owing to the overall homogeneity and structural self-similarity of the composite coating, it exhibits exceptional mechanical robustness and weatherability, maintaining its anti-icing and liquid-repellent functions even after 180 tape peeling cycles, 45 sandpaper abrasion cycles, and 288 h of intense UV aging. Notably, the coating demonstrates superior thermal stability, retaining excellent superhydrophobic characteristics after continuous annealing in a muffle furnace at 200 °C for 7 days, thereby effectively overcoming the industrial bottleneck of performance degradation in photothermal coatings under severe summer sun exposure. In extreme anti-icing tests at −30 °C, The coating significantly reduced the adhesion strength of ice on the aluminum substrate from 80.4 kPa to 21.5 kPa; concurrently, the complete freezing time of water droplets was extended from 27 s on aluminum to 93 s. Under xenon lamp irradiation at 25 mW/cm 2 , its freezing delay time was prolonged from 46 s on aluminum to 214 s. Under an irradiation intensity of 50 mW/cm 2 , the coating relies on an efficient interfacial melting mechanism to shed a large 1.5 cm 3 ice block in merely 73.3 s. This research provides a novel perspective for the fabrication of low-cost, long-lifespan coatings with active-passive synergistic anti-icing performance for harsh extreme environments. • A fluorinated epoxy oligomer was synthesized to ensure matrix compatibility. • The coating achieves a contact angle of 169.2° and >96% solar absorbance. • Superhydrophobicity remains stable after 200 °C heat treatment for 7 days. • Excellent anti-icing performance was verified by rapid interfacial ice melting.
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