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Mechanical Properties of Al_2O_3/Polymethylmethacrylate Nanocomposites

机译:Al_2O_3 /聚甲基丙烯酸甲酯纳米复合材料的力学性能

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Alumina/polymethylmethacrylate (PMMA) nanocomposites were produced by incorporating alumina nanoparticles, synthesized using the forced gas condensation method, into methylmethacryalte. The particles were dispersed using sonication and the composites were polymerized using free radical polymerization. At an optimum weight percent, the resulting nanocomposites showed, on average, a 600% increase in the strain-to-failure and the appearance of a well-defined yield point when tested in uniaxial tesnion. Concurrently, the glass transition temperature (T_g) of the nanocomposites dropped by as much as 25 deg C, while the ultimate strength and the Young's modulus decreased by 20% and 15%, respectively. For comparison, composites containing micron size alumina particles were synthesized and displayed neither phenomenon. Solid-state deuterium NMR results showed enhanced chain mobility at room temperature in the nanocomposites and corroborate the observed T_g depression indicating considerable main chain motion at temperatures well below those observed in the neat polymer. A hypothesis is presented to relate the thermal and mechanical behavior observed in the composites to the higher chain mobility and T_g depression seen in recent ultrathin polymer film research.
机译:氧化铝/聚甲基丙烯酸甲酯(PMMA)纳米复合材料是通过将采用强制气体缩合法合成的氧化铝纳米颗粒掺入甲基丙烯酸甲酯中而制得的。使用超声处理分散颗粒,并使用自由基聚合将复合材料聚合。在单轴拉伸试验中,以最佳重量百分比计,所得纳米复合材料平均表现出600%的应变破坏,并且出现了明确定义的屈服点。同时,纳米复合材料的玻璃化转变温度(T_g)下降了25摄氏度,而极限强度和杨氏模量分别下降了20%和15%。为了进行比较,合成了包含微米级氧化铝颗粒的复合材料,并且均未显示任何现象。固态氘核磁共振结果显示,纳米复合材料在室温下链移动性增强,并证实了所观察到的T_g下降,表明在远低于纯聚合物所观察到的温度下相当大的主链运动。提出了一个假设,将复合材料中观察到的热和机械行为与最近的超薄聚合物薄膜研究中发现的较高的链迁移率和T_g降低相关。

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