Labrague Gladwin, Gomez Fernando, Chen Zhan
Department of Chemistry, University of Michigan, 930 North University Avenue, Ann Arbor, Michigan 48109, United States.
Langmuir. 2024 May 7;40(18):9345-9361. doi: 10.1021/acs.langmuir.4c00615. Epub 2024 Apr 26.
Poly(dimethylsiloxane) (PDMS) has numerous excellent properties and is extensively used as the main component of many silicone products in a variety of research fields and practical applications such as biomedical materials, aviation, construction, electronic devices, and automobiles. Interfacial structures of PDMS and other components in silicone systems are important for such research and applications. It is difficult to probe interfacial molecular structures of buried solid-liquid and solid-solid interfaces of silicone materials due to the lack of appropriate analytical tools. In this feature article, we presented our research on elucidating the molecular structures of PDMS as well as other additives in silicone samples at buried interfaces in situ at the molecular level using a nonlinear optical spectroscopic technique, sum frequency generation (SFG) vibrational spectroscopy. SFG was applied to study various PDMS surfaces in liquid environments to understand their fouling-release and antifouling activities. SFG has also been used to study buried solid-solid interfaces between silicone adhesives and polymers, elucidating the molecular adhesion mechanisms. Our SFG studies provide important knowledge on interfacial structure-function relationships of silicone materials, helping the design and development of silicone materials with improved properties through optimization of silicone interfacial structures.
聚二甲基硅氧烷(PDMS)具有众多优异性能,在生物医学材料、航空、建筑、电子设备和汽车等各种研究领域及实际应用中,被广泛用作许多硅基产品的主要成分。硅氧烷体系中PDMS与其他组分的界面结构对于此类研究和应用至关重要。由于缺乏合适的分析工具,很难探测硅氧烷材料中埋藏的固 - 液和固 - 固界面的界面分子结构。在这篇专题文章中,我们介绍了我们的研究,即使用非线性光学光谱技术——和频振动光谱(SFG),在分子水平上原位阐明硅氧烷样品中埋藏界面处PDMS以及其他添加剂的分子结构。SFG被用于研究液体环境中的各种PDMS表面,以了解它们的防污 - 释放和防污活性。SFG还被用于研究硅氧烷粘合剂与聚合物之间埋藏的固 - 固界面,阐明分子粘附机制。我们的SFG研究为硅氧烷材料的界面结构 - 功能关系提供了重要知识,有助于通过优化硅氧烷界面结构来设计和开发性能更优的硅氧烷材料。