Nanoscale-Agglomerate-Mediated Heterogeneous Nucleation

成核 化学工程 冷凝 蒸发 超疏水涂料 接触角 化学气相沉积 材料科学 纳米尺度 表面能 纳米颗粒 结块 冰核 纳米技术 化学 涂层 有机化学 复合材料 物理 工程类 热力学
作者
Hyeongyun Cha,Alex Wu,Moon-Kyung Kim,Kosuke Saigusa,Aihua Liu,Nenad Miljkovic
出处
期刊:Nano Letters [American Chemical Society]
卷期号:17 (12): 7544-7551 被引量:53
标识
DOI:10.1021/acs.nanolett.7b03479
摘要

Water vapor condensation on hydrophobic surfaces has received much attention due to its ability to rapidly shed water droplets and enhance heat transfer, anti-icing, water harvesting, energy harvesting, and self-cleaning performance. However, the mechanism of heterogeneous nucleation on hydrophobic surfaces remains poorly understood and is attributed to defects in the hydrophobic coating exposing the high surface energy substrate. Here, we observe the formation of high surface energy nanoscale agglomerates on hydrophobic coatings after condensation/evaporation cycles in ambient conditions. To investigate the deposition dynamics, we studied the nanoscale agglomerates as a function of condensation/evaporation cycles via optical and field emission scanning electron microscopy (FESEM), microgoniometric contact angle measurements, nucleation statistics, and energy dispersive X-ray spectroscopy (EDS). The FESEM and EDS results indicated that the nanoscale agglomerates stem from absorption of sulfuric acid based aerosol particles inside the droplet and adsorption of volatile organic compounds such as methanethiol (CH3SH), dimethyl disulfide (CH3SSCH), and dimethyl trisulfide (CH3SSSCH3) on the liquid–vapor interface during water vapor condensation, which act as preferential sites for heterogeneous nucleation after evaporation. The insights gained from this study elucidate fundamental aspects governing the behavior of both short- and long-term heterogeneous nucleation on hydrophobic surfaces, suggest previously unexplored microfabrication and air purification techniques, and present insights into the challenges facing the development of durable dropwise condensing surfaces.

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