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首页> 外文期刊>Journal of Applied Polymer Science >Structure and properties of tailor-made poly(ethyl acrylate)/clay nanocomposites prepared by in situ atom transfer radical polymerization
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Structure and properties of tailor-made poly(ethyl acrylate)/clay nanocomposites prepared by in situ atom transfer radical polymerization

机译:原位原子转移自由基聚合制备的量身定制的聚丙烯酸乙酯/粘土纳米复合材料的结构和性能

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An in-depth study was carried out on the structure and properties of a series of poly(ethyl acrylate)/clay nanocomposites prepared by in situ atom transfer radical polymerization (PNCIs) with well-defined molecular weights and narrow molecular weight distributions. Wide-angle Xray diffraction and transmission electron microscopy studies revealed an exfoliated clay morphology, whereas conventional solution blending generated an intercalated structure. The storage moduli of the PNCIs showed a moderate increase over that of the neat polymer [poly(ethyl acrylate)]. The sample containing 4 wt % clay (PNCI4, where the number following PNCI indicates the weight percentage of clay) exhibited the highest improvement (31.9% at 25 degrees C). In PNCIs, the beta-transition temperature showed a remarkable decrease (by 175% in PNCI4) along with a shift toward higher temperatures. This indicated the probability of the anchoring of the -OH group of the clay layers to the >C=O group of the pendant acrylate moiety, which was also confirmed by Fourier transform infrared analysis. Rheological measurements indicated a significant increase in the shear viscosity [by 9% in PNCI2,15% in PNCI4, and 6% in the poly(ethyl acrylate)/clay nanocomposite with 2 wt % clay prepared by solution blending]. The PNCIs registered enhanced thermal stability, as indicated by the shift in the peak maximum temperature (388 and 392 degrees C for the neat polymer and PNCI4, respectively) and a decrease in the rate of degradation (by 3.5% in PNCI2, 10.2% in PNCI4, and 49.3% in PNCI6). (C) 2008 Wiley Periodicals, Inc.
机译:深入研究了一系列由分子量明确,分子量分布窄的原位原子转移自由基聚合(PNCI)制备的聚丙烯酸乙酯/粘土纳米复合材料的结构和性能。广角X射线衍射和透射电子显微镜研究显示出剥落的粘土形态,而常规溶液共混产生了层间结构。 PNCI的储能模量比纯聚合物[聚(丙烯酸乙酯)]的储能模量有适度增加。包含4 wt%粘土(PNCI4,其中PNCI后的数字表示粘土的重量百分比)的样品表现出最高的改善(在25摄氏度下为31.9%)。在PNCI中,β转变温度显着下降(PNCI4中下降了175%),并且向更高的温度转变。这表明粘土层的-OH基团锚固于丙烯酸酯侧基部分的> C = O基团的可能性,这也通过傅里叶变换红外分析得到证实。流变学测量表明剪切粘度显着增加[在PNCI2中为9%,在PNCI4中为15%,在具有通过溶液共混制备的2wt%粘土的聚(丙烯酸乙酯)/粘土纳米复合材料中为6%]。 PNCIs具有增强的热稳定性,如峰值最高温度的变化(纯聚合物和PNCI4分别为388和392℃)和降解速率的降低(PNCI2下降3.5%,PNCI2下降10.2%)所示。 PNCI4,占PNCI6的49.3%)。 (C)2008 Wiley期刊公司

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