John Łukasz, Ejfler Jolanta
Faculty of Chemistry, University of Wrocław, 14 F. Joliot-Curie, 50-383 Wrocław, Poland.
Polymers (Basel). 2023 Mar 14;15(6):1452. doi: 10.3390/polym15061452.
Rapid developments in materials engineering are accompanied by the equally rapid development of new technologies, which are now increasingly used in various branches of our life. The current research trend concerns the development of methods for obtaining new materials engineering systems and searching for relationships between the structure and physicochemical properties. A recent increase in the demand for well-defined and thermally stable systems has highlighted the importance of polyhedral oligomeric silsesquioxane (POSS) and double-decker silsesquioxane (DDSQ) architectures. This short review focuses on these two groups of silsesquioxane-based materials and their selected applications. This fascinating field of hybrid species has attracted considerable attention due to their daily applications with unique capabilities and their great potential, among others, in biomaterials as components of hydrogel networks, components in biofabrication techniques, and promising building blocks of DDSQ-based biohybrids. Moreover, they constitute attractive systems applied in materials engineering, including flame retardant nanocomposites and components of the heterogeneous Ziegler-Natta-type catalytic system.
材料工程的快速发展伴随着新技术同样迅速的发展,这些新技术现在越来越多地应用于我们生活的各个领域。当前的研究趋势涉及获得新材料工程系统的方法的开发以及寻找结构与物理化学性质之间的关系。最近对定义明确且热稳定系统的需求增加,凸显了多面体低聚倍半硅氧烷(POSS)和双层倍半硅氧烷(DDSQ)结构的重要性。这篇简短的综述聚焦于这两类基于倍半硅氧烷的材料及其选定的应用。这个迷人的杂化物种领域因其日常应用中独特的性能以及巨大的潜力而备受关注,尤其是在生物材料领域,作为水凝胶网络的组成部分、生物制造技术的组成部分以及基于DDSQ的生物杂化体的有前景的构建单元。此外,它们构成了应用于材料工程的有吸引力的系统,包括阻燃纳米复合材料和非均相齐格勒 - 纳塔型催化系统的组成部分。