Balanuca Brindusa, Stan Raluca, Lungu Adriana, Vasile Eugeniu, Iovu Horia
Department of Bioresources and Polymer Science, Advanced Polymer Materials Group, University Politehnica of Bucharest, Bucharest, Romania.
Department of Organic Chemistry, University Politehnica of Bucharest, Bucharest, Romania.
Des Monomers Polym. 2016 Sep 16;20(1):10-17. doi: 10.1080/15685551.2016.1231031. eCollection 2017.
Lately, renewable resources received great attention in the macromolecular compounds area, regarding the design of the monomers and polymers with different applications. In this study the capacity of several modified vegetable oil-based monomers to build competitive hybrid networks was investigate, taking into account thermal and mechanical behavior of the designed materials. In order to synthesize such competitive nanocomposites, the selected renewable raw material, camelina oil, was employed due to the non-toxicity and biodegradability behavior. General properties of epoxidized camelina oil-based materials were improved by loading of different types of organic-inorganic hybrid compounds - polyhedral oligomeric silsesquioxane (POSS) bearing one (POSS1Ep) or eight (POSS8Ep) epoxy rings on the cages. In order to identify the chemical changes occurring after the thermal curing reactions, FT-IR spectrometry was employed. The new synthesized nanocomposites based on epoxidized camelina oil (ECO) were characterized by dynamic mechanical analyze and thermogravimetric analyze. The morphology of the ECO-based materials was investigate by scanning electron microscopy and supplementary information regarding the presence of the POSS compounds were establish by energy dispersive X-ray analysis and X-ray photoelectron spectroscopy. The smooth materials without any separation phase indicates a well dispersion of the Si-O-Si cages within the organic matrix and the incorporation of this hybrid compounds into the ECO network demonstrates to be a well strategy to improve the thermal and mechanical properties, simultaneously.
近来,在高分子化合物领域,可再生资源在设计具有不同应用的单体和聚合物方面受到了极大关注。在本研究中,考虑到所设计材料的热性能和力学性能,对几种改性植物油基单体构建竞争性杂化网络的能力进行了研究。为了合成这种具有竞争力的纳米复合材料,选用了可再生原料荠蓝油,因为它具有无毒和可生物降解的特性。通过负载不同类型的有机 - 无机杂化化合物——笼形上带有一个(POSS1Ep)或八个(POSS8Ep)环氧环的多面体低聚倍半硅氧烷(POSS),改善了环氧化荠蓝油基材料的一般性能。为了确定热固化反应后发生的化学变化,采用了傅里叶变换红外光谱法。基于环氧化荠蓝油(ECO)新合成的纳米复合材料通过动态力学分析和热重分析进行了表征。通过扫描电子显微镜研究了ECO基材料的形态,并通过能量色散X射线分析和X射线光电子能谱确定了有关POSS化合物存在的补充信息。没有任何分离相的光滑材料表明Si - O - Si笼在有机基质中分散良好,并且将这种杂化化合物掺入ECO网络被证明是同时改善热性能和力学性能的良好策略。