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首页> 外文期刊>Macromolecular symposia >Synthesis, characterization and properties of (vinyl triethoxy silane-grafted PP)/silica naneocomposites
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Synthesis, characterization and properties of (vinyl triethoxy silane-grafted PP)/silica naneocomposites

机译:(乙烯基三乙氧基硅烷接枝的PP)/二氧化硅纳米复合材料的合成,表征和性能

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摘要

A new route has been developed to produce PP/silica nanocomposites starting from porous PP reactor powder and making use of sol-gel chemistry. Silica-like, nano-sized particles were prepared in the pores of the PP reactor powder with a controlled degree of adhesion between PP and silica. Magic-angle spinning (MAS) Si-29 NMR spectra showed that the chemical building blocks of the silica-like clusters are of Q(3) and Q(4)-type. For (vinyl triethoxy silane (VTES)-grafted PP)/silica nanocomposites, VTES was grafted via solid-state modification (SSM) in porous PP particles. Subsequently, silica particles were prepared by sol-gel technology in the VTES-grafted PP. MAS Si-29 NMR and FT-IR spectroscopy showed that the grafted VTES becomes part of the in-situ formed silica particles. The study on the mechanical properties of (VTES-grafted PP)/silica nanocomposites showed that the silica particles improved the impact toughness of PP by a factor of 2, when there is no chemical interaction between the particles and the matrix, while for (VTES-grafted PP)/silica nanocomposites the impact toughness decreased. This indicates that chemical bonding between the filler particles and the PP-matrix results in brittle failure and supports the hypothesis that debonding is necessary for improving the impact toughness of PP with inorganic fillers.
机译:已经开发了一条新的路线,从多孔PP反应器粉末开始,并利用溶胶-凝胶化学方法生产PP /二氧化硅纳米复合材料。在PP反应器粉末的孔中制备二氧化硅状的纳米尺寸的颗粒,PP和二氧化硅之间的粘合度得到控制。魔角旋转(MAS)Si-29 NMR光谱表明,二氧化硅样簇的化学构造基团是Q(3)和Q(4)型的。对于(乙烯基三乙氧基硅烷(VTES)接枝的PP)/二氧化硅纳米复合材料,通过固态改性(SSM)将VTES接枝到多孔PP颗粒中。随后,在VTES接枝的PP中通过溶胶-凝胶技术制备二氧化硅颗粒。 MAS Si-29 NMR和FT-IR光谱表明,接枝的VTES成为原位形成的二氧化硅颗粒的一部分。对(VTES接枝的PP)/二氧化硅纳米复合材料的机械性能的研究表明,当颗粒与基体之间没有化学相互作用时,二氧化硅颗粒将PP的冲击韧性提高了2倍,而对于(VTES) -接枝PP)/二氧化硅纳米复合材料的冲击韧性降低。这表明填料颗粒与PP基质之间的化学键合会导致脆性破坏,并支持以下假设:为了提高PP与无机填料的冲击韧性,必须进行脱键。

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