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首页> 外文期刊>Journal of Applied Polymer Science >Solid-State Graft Polymerization of Styrene in Spherical Polypropylene Particles in the Presence of Montmorillonite
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Solid-State Graft Polymerization of Styrene in Spherical Polypropylene Particles in the Presence of Montmorillonite

机译:蒙脱土存在下球形聚丙烯颗粒中苯乙烯的固相接枝聚合

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In this work, cetyltrimethyl ammonium bromide and methacryloyloxyethyhrimethyl ammonium chloride were used to prepare organophilic montmorillonite (O-MMT). Then, polypropylene (PP)-clay nanocompo-sites were prepared by the in situ grafting polymerization of styrene (St)-containing O-MMT onto PP with tert-butyl perbenzoate as an initiator in the solid state. Fourier transform infrared spectroscopy, gel permeation chromatography, transmission electron microscopy, and X-ray diffraction were applied to study the structure of the layered silicate and modified PP. The surfaces of the composites and, thus, the distribution of the clay in the PP matrix were characterized by scanning electron microscopy. The rheology and mechanical properties were studied and are discussed. According to the characterization results, OMMT and St were already grafted onto the PP main chain. Also, the intercalated structure of montmorillonite could be stabilized, and a stable exfoliated structure could be attained. Namely, intercalated PP/OMMT nanocomposites were obtained. The rheological results clearly show that these PP/OMMT nanocomposites had long-chain-branched structures. The peroxide modification of PP had minor effects on the tensile and bending strengths of the modified PP; however, this modification resulted in a significant reduction in the impact strength.
机译:在这项工作中,十六烷基三甲基溴化铵和甲基丙烯酰氧基乙炔基甲基氯化铵用于制备亲有机蒙脱土(O-MMT)。然后,通过将固态的过苯甲酸叔丁酯作为引发剂,将含苯乙烯(St)的O-MMT原位接枝聚合到PP上,制备聚丙烯(PP)-粘土纳米复合材料。傅里叶变换红外光谱,凝胶渗透色谱,透射电子显微镜和X射线衍射被用来研究层状硅酸盐和改性PP的结构。通过扫描电子显微镜表征了复合材料的表面,以及因此粘土在PP基质中的分布。对流变学和力学性能进行了研究和讨论。根据表征结果,OMMT和St已被接枝到PP主链上。另外,可以稳定蒙脱石的插层结构,并且可以获得稳定的剥离结构。即,获得插层的PP / OMMT纳米复合材料。流变结果清楚地表明,这些PP / OMMT纳米复合材料具有长链支化结构。 PP的过氧化物改性对改性PP的拉伸强度和弯曲强度影响不大。但是,这种改变导致冲击强度大大降低。

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