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Reinforcement of a Rubbery Epoxy Polymer by Mesostructured Silica and Organosilica with Wormhole Framework Structures

机译:虫孔骨架结构介孔结构二氧化硅和有机二氧化硅增强橡胶状环氧聚合物

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Mesostructured forms of silica (denoted MSU-J) and aminopropyl-functionalized silica (denoted AP-MSU-J) with wormhole framework structures are effective reinforcing agents for a rubbery epoxy polymer. At loadings of 2.0-10 wt %, MSU-J silica with an average framework pore size of 14 nm (65 ℃ assembly temperature) provides superior reinforcement properties in comparison to MSU-J silica with a smaller average framework pore size of 5.3 nm (25 ℃ assembly temperature), even though the surface area of the larger pore mesostructure (670m~2g~(-1)) is substantially lower than the smaller pore mesostructure (964m~2g~(-1)). The introduction of 5.0 and 10mol % aminopropyl groups in the wormhole framework walls decreases the textural properties in comparison to the pure silica analogs. AP-MSU-J organosilicas increase the tensile strength as well as the strain-at-break of the rubbery epoxy mesocomposites in comparison to MSU-J silica as a reinforcing agent. The improved toughness provided by the aminopropyl functionalized mesostructures is attributable in part to covalent bond formation between the mesostructured silica walls and the cured epoxy matrix and to a more ductile mesostructure framework in comparison to a pure silica framework. An organosilica derivative containing 20 mol % aminopropyl groups, but lacking a mesostructured framework, provides little or no improvement in polymer tensile properties, demonstrating that an ordered porous network is essential for polymer reinforcement. In general, the reinforcement benefits provided by mesostructures with larger framework pores are superior to those provided by smaller pore derivatives, most likely because of more efficient polymer impregnation of the particle mesopores. The presence of a mesostructured form of the organosilica is essential for improving the mechanical properties of the epoxy polymer.
机译:具有虫孔骨架结构的二氧化硅(表示为MSU-J)和氨基丙基官能化二氧化硅(表示为AP-MSU-J)的介观结构形式是橡胶状环氧聚合物的有效增强剂。在2.0-10 wt%的负载量下,平均骨架孔尺寸为14 nm(装配温度为65℃)的MSU-J二氧化硅与平均骨架孔尺寸为5.3 nm的MSU-J二氧化硅相比具有更好的增强性能(即使在较大的孔介观结构(670m〜2g〜(-1))的表面积之下,即使是较大的孔介观结构的表面积(964m〜2g〜(-1)),其表面积也大大低于25℃。与纯二氧化硅类似物相比,在虫孔构架壁中引入5.0和10mol%的氨丙基降低了织构性质。与作为增强剂的MSU-J二氧化硅相比,AP-MSU-J有机二氧化硅提高了橡胶状环氧介孔复合材料的拉伸强度以及断裂应变。氨基丙基官能化的介孔结构所提供的改进的韧性部分归因于介孔结构化的二氧化硅壁与固化的环氧基质之间的共价键形成以及与纯二氧化硅骨架相比更易延展的介观结构的骨架。含有20摩尔%氨丙基的有机硅衍生物,但缺乏介观结构的骨架,几乎没有或没有改善聚合物的拉伸性能,这表明有序的多孔网络对于聚合物增强至关重要。通常,具有较大骨架孔的介孔结构所提供的增强益处要优于较小的孔衍生物所提供的增强作用,这很可能是由于颗粒中孔的聚合物浸渍效率更高。介孔结构形式的有机硅的存在对于改善环氧聚合物的机械性能是必不可少的。

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