润湿
聚二甲基硅氧烷
材料科学
聚合物
石英晶体微天平
接触角
己烷
化学工程
椭圆偏振法
表面能
烷烃
蒸发
吸附
戊烷
复合材料
相(物质)
化学物理
润湿转变
涂层
水蒸气
云母
微流控
表面张力
表面力
纳米孔
作者
Behrooz Khatir,Mohammad Soltani,Samuel Au,Thu V. Vuong,Emma R. Master,Kevin Golovin
出处
期刊:Langmuir
[American Chemical Society]
日期:2026-07-16
卷期号:42 (29): 20956-20971
标识
DOI:10.1021/acs.langmuir.6c01060
摘要
Modification of the vapor phase can dynamically alter interfacial energies, wetting, and droplet motion. We investigate the influence of vapor adsorption on the interfacial properties and droplet mobility of polymer brushes, self-assembled layers, and bare silicon. Ellipsometry and quartz crystal microbalance with dissipation experiments show that polydimethylsiloxane (PDMS) brush thickness increases by ∼45% in n-hexane vapor, whereas a negligible increase is observed for all other surfaces, indicating that PDMS brushes swell in n-hexane vapor. Despite this, we find that vapor-induced changes in interfacial energies dominate the wetting response; swelling actually hinders droplet mobility. Across all nonfluorinated surfaces, alkane vapors adsorb on the solid interface to form ultrathin liquid films that also cloak water droplets. Water droplets that are pinned or move at ≤0.2 mm/s when in air reach velocities above 30 mm/s on PDMS brushes and alkylsilane coatings when in n-pentane and n-hexane vapors. In contrast, a continuous lubricating alkane film does not form on fluorinated polymer brushes, and consequently, droplet velocities remain low (<0.1 mm/s) in all vapor environments. These results identify vapor-induced interfacial energy modification, rather than polymer swelling, as the key mechanism enabling tunable droplet mobility on smooth coatings.
科研通智能强力驱动
Strongly Powered by AbleSci AI