Department of Chemical Engineering, Soongsil University, Seoul 06978, Republic of Korea.
Langmuir. 2023 Apr 4;39(13):4829-4837. doi: 10.1021/acs.langmuir.3c00272. Epub 2023 Mar 22.
Hierarchical functional organic-inorganic hybrid particles for versatile control of surface wettability have attracted much attention in a wide range of applications from makeup cosmetics to anti-smudging optoelectronic devices. In this study, superhydrophobic and oleophobic organic-inorganic hybrid particles were prepared by a simple and systematic fabrication strategy using the synergistic combination of commonly available silica particles and polydimethylsiloxanes (PDMSs) with hydrophobic chain ends. Various types of PDMSs with different chain lengths and chemical structures were surface-grafted to silica microparticles through facile physical dispersion and subsequent thermal treatment to form hydrogen bonds or covalent bonds between the inorganic silica and organic PDMS polymers and thus induce a core-shell structure for the hybrid particles, which imparts superhydrophobicity and oleophobicity to the surface of silica particles. The prepared PDMS-coated silica hybrid particles with long PDMS chains exhibited a water contact angle of 151.2° and an oil contact angle of 15.2° due to the rough surface morphology and hydrophobic long-chain effects. Furthermore, the resulting organic-inorganic hybrid particles were thermally stable up to 420 °C. This controlled approach endowed the organic-inorganic hybrid particles with both superhydrophobic and oleophobic surfaces and, therefore, these particles were proven to be suitable for waterproof applications.
用于多功能控制表面润湿性的分层功能有机-无机杂化粒子在从化妆品到防污光电器件的广泛应用中引起了极大关注。在这项研究中,通过使用普通二氧化硅颗粒和具有疏水性链末端的聚二甲基硅氧烷(PDMS)的协同组合的简单而系统的制造策略,制备了超疏水和超低粘性的有机-无机杂化粒子。通过简单的物理分散和随后的热处理,将各种具有不同链长和化学结构的 PDMS 接枝到二氧化硅微球上,以在无机二氧化硅和有机 PDMS 聚合物之间形成氢键或共价键,从而诱导杂化粒子形成核壳结构,赋予二氧化硅粒子超疏水性和超低粘性。由于粗糙的表面形态和疏水性长链的影响,具有长 PDMS 链的制备的 PDMS 涂覆的二氧化硅杂化粒子表现出 151.2°的水接触角和 15.2°的油接触角。此外,所得的有机-无机杂化粒子在高达 420°C 的温度下热稳定。这种控制方法赋予了有机-无机杂化粒子超疏水性和超低粘性表面,因此这些粒子被证明适用于防水应用。