Dept. of Materials Science, INSTM, University of Milano-Bicocca, Via R. Cozzi 55, 20125 Milano, Italy.
Dept. Industrial Engineering, University of Trento, via Sommarive 9, 38123 Trento, Italy; "Klaus Müller" Magnetic Resonance Lab., DII, University of Trento, via Sommarive 9, 38123 Trento, Italy.
J Colloid Interface Sci. 2018 Feb 15;512:609-617. doi: 10.1016/j.jcis.2017.10.094. Epub 2017 Oct 26.
Organic-inorganic nanobuilding blocks (NBBs) based on silsesquioxanes (SSQs) have potential applications as nanofillers, thermal stabilizers, and rheological modifiers, which can improve thermomechanical properties of polymer hosts. The possibility to tune both siloxane structure and pendant groups can promote compatibilization and peculiar interactions with a plethora of polymers. However, the control on SSQs molecular architecture and functionalities is usually delicate and requires careful synthetic details. Moreover, investigating the influence of NBBs loading and structure on the hybrid interface and, in turn, on the polymer chains mobility and mechanical properties, may be challenging, especially for low-loaded materials. Herein, we describe the preparation and characterization of polybutadiene (PB) nanocomposites using as innovative fillers thiol-functionalized SSQs nanobuilding blocks (SH-NBBs), with both tailorable functionality and structure. Swelling experiments and, more clearly, solid-state NMR, enlightened a remarkable effect of SH-NBBs on the molecular structure and mobility of the polymeric chains, envisaging the occurrence of chemical interactions at the hybrid interface. Finally, thermal and DMTA analyses revealed that nanocomposites, even containing very low filler loadings (i.e. 1, 3 wt%), exhibited enhanced thermomechanical properties, which seem to be connected not only to the loading, but also to the peculiar cage or ladder-like architecture of SH-NBBs.
基于硅倍半氧烷(SSQ)的有机-无机纳米构建块(NBB)可用作纳米填料、热稳定剂和流变改性剂,可改善聚合物基体的热机械性能。调节硅氧烷结构和侧基的可能性可以促进与大量聚合物的相容化和特殊相互作用。然而,SSQ 分子结构和功能的控制通常很微妙,需要仔细的合成细节。此外,研究 NBB 负载和结构对杂化界面的影响,进而对聚合物链的迁移率和力学性能的影响,可能具有挑战性,特别是对于低负载材料。本文描述了使用具有可定制功能和结构的巯基功能化 SSQ 纳米构建块(SH-NBB)制备和表征聚丁二烯(PB)纳米复合材料。溶胀实验,更清楚地说是固态 NMR,阐明了 SH-NBB 对聚合物链的分子结构和迁移率的显著影响,预示着在杂化界面处发生化学相互作用。最后,热分析和 DMTA 分析表明,即使含有非常低的填充负载(即 1、3wt%),纳米复合材料也表现出增强的热机械性能,这似乎不仅与负载有关,还与 SH-NBB 的特殊笼状或梯级结构有关。