Dynamics of Ice Nucleation on Water Repellent Surfaces

成核 冰核 过冷 结冰 化学物理 材料科学 表面能 经典成核理论 接触角 工作(物理) 纳米技术 化学 热力学 气象学 复合材料 物理
作者
Azar Alizadeh,Masako Yamada,Ri Li,Wen Shang,Shourya Prakash Otta,Sheng Zhong,Liehui Ge,Ali Dhinojwala,Ken R. Conway,Vaibhav Bahadur,Anthony J. Vinciquerra,Brian Stephens,Margaret L. Blohm
出处
期刊:Langmuir [American Chemical Society]
卷期号:28 (6): 3180-3186 被引量:436
标识
DOI:10.1021/la2045256
摘要

Prevention of ice accretion and adhesion on surfaces is relevant to many applications, leading to improved operation safety, increased energy efficiency, and cost reduction. Development of passive nonicing coatings is highly desirable, since current antiicing strategies are energy and cost intensive. Superhydrophobicity has been proposed as a lead passive nonicing strategy, yet the exact mechanism of delayed icing on these surfaces is not clearly understood. In this work, we present an in-depth analysis of ice formation dynamics upon water droplet impact on surfaces with different wettabilities. We experimentally demonstrate that ice nucleation under low-humidity conditions can be delayed through control of surface chemistry and texture. Combining infrared (IR) thermometry and high-speed photography, we observe that the reduction of water-surface contact area on superhydrophobic surfaces plays a dual role in delaying nucleation: first by reducing heat transfer and second by reducing the probability of heterogeneous nucleation at the water-substrate interface. This work also includes an analysis (based on classical nucleation theory) to estimate various homogeneous and heterogeneous nucleation rates in icing situations. The key finding is that ice nucleation delay on superhydrophobic surfaces is more prominent at moderate degrees of supercooling, while closer to the homogeneous nucleation temperature, bulk and air-water interface nucleation effects become equally important. The study presented here offers a comprehensive perspective on the efficacy of textured surfaces for nonicing applications.
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