Eder Tanja, Mautner Andreas, Xu Yufeng, Reithofer Michael R, Bismarck Alexander, Chin Jia Min
Department of Functional Materials and Catalysis, University of Vienna, Währinger Straße 42, 1090 Vienna, Austria.
Institute of Materials Chemistry and Research, University of Vienna, Währinger Straße 42, 1090 Vienna, Austria.
ACS Appl Mater Interfaces. 2024 Feb 28;16(8):10942-10952. doi: 10.1021/acsami.3c17110. Epub 2024 Feb 13.
Liquid-like surfaces featuring slippery, omniphobic, covalently attached liquids (SOCALs) reduce unwanted adhesion by providing a molecularly smooth and slippery surface arising from the high mobility of the liquid chains. Such SOCALs are commonly prepared on hard substrates, such as glass, wafers, or metal oxides, despite the importance of nonpolar elastomeric substrates, such as polydimethylsiloxane () in anti-fouling or nonstick applications. Compared to polar elastomers, hydrophobic elastomer activation and covalent functionalization are significantly more challenging, as tends to display fast hydrophobic recovery upon activation as well as superficial cracking. Through the extraction of excess oligomers and fine-tuning of plasma activation parameters, homogeneously functionalized with fluorinated polysiloxane brushes could be obtained while at the same time reducing crack formation. Polymer brush mobility was increased through the addition of a smaller molecular silane linker to exhibit enhanced dewetting properties and reduced substrate swelling compared to functionalizations featuring hydrocarbon functionalities. Linear polymer brushes were verified by thermogravimetric analysis. The optical properties of remained unaffected by the activation in high-frequency plasma but were impacted by low-frequency plasma. Drastic decreases in solid adhesion of not just complex contaminants but even ice could be shown in horizontal push tests, demonstrating the potential of SOCAL-functionalized surfaces for improved nonstick applications.
具有滑动、超疏液、共价连接液体(SOCALs)的类液体表面通过提供由液体链的高迁移率产生的分子光滑且滑动的表面来减少不必要的粘附。尽管非极性弹性体基材(如聚二甲基硅氧烷(PDMS))在防污或不粘应用中很重要,但此类SOCALs通常是在硬基材(如玻璃、晶圆或金属氧化物)上制备的。与极性弹性体相比,疏水性弹性体的活化和共价功能化更具挑战性,因为PDMS在活化时往往会快速恢复疏水性并出现表面开裂。通过提取过量的低聚物并微调等离子体活化参数,可以获得用氟化聚硅氧烷刷均匀功能化的PDMS,同时减少裂纹形成。与具有烃官能团的功能化相比,通过添加较小分子的硅烷连接体增加了聚合物刷的迁移率,以表现出增强的去湿性能并减少基材溶胀。通过热重分析验证了线性聚合物刷。PDMS的光学性能不受高频等离子体活化的影响,但受低频等离子体的影响。在水平推测试中可以显示,不仅复杂污染物甚至冰的固体粘附力都大幅下降,这证明了SOCAL功能化的PDMS表面在改善不粘应用方面的潜力。