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
硅
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
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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