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Preparation And Properties Of Chitosan Nanocomposites With Nanofillers Of Different Dimensions

机译:不同尺寸纳米填料的壳聚糖纳米复合材料的制备与性能

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In this work, the chitosan ternary nanocomposites with two-dimensional (2D) clay platelets and one-dimensional (ID) CNTs have been successfully prepared by a simple solution-intercalation/mixing method in acid media. It was found that the thermal degradation temperature of chitosan (at 50% weight loss) could be only improved in about 20-30 C by adding 3 wt% either clay or CNTs, however, almost 80 C increase of degradation temperature could be achieved by adding 2 wt% clay and 1 wt% CNTs together. Dynamic mechanical measurement demonstrated an obviously improved storage modulus for chitosan/clay-CNTs than that for the corresponding binary chitosan/clay or chitosan/CNT nanocomposites with the same total filler content (3 wt%). For the solvent vapor permeation properties, a largely improved benzene vapor barrier property was observed only in chitosan/clay-CNT ternary nanocomposites and depended on the ratio of clay to CNTs. XRD, SEM and TEM results showed that both clay and CNTs could be well dispersed in the ternary nanocomposites with the nanotubes located around the clay platelets. FT1R showed an improved interaction between the fillers and chitosan by using both clay and CNTs. A much enhanced solid-like behavior was observed in the ternary nanocomposites, compared with the corresponding binary nanocomposites with the same total filler content, as indicated by Theological measurement. The unique synergistic effect of two-dimensional (2D) clay platelets and one-dimensional (ID) CNTs on the property enhancement could be tentatively understood as due to a formation of much jammed filler network with 1D CNTs and 2D clay platelets combined together. Our work demonstrates a good example for the preparation of high performance polymer nanocomposites by using nanofillers with different dimensions together.
机译:在这项工作中,已通过简单的溶液插层/混合方法在酸性介质中成功制备了具有二维(2D)粘土薄片和一维(ID)CNT的壳聚糖三元纳米复合材料。已经发现,通过添加3重量%的粘土或CNT,壳聚糖的热降解温度(在50%的重量损失下)仅在约20-30℃下可以改善,但是,通过降低粘度,壳聚糖的热降解温度可以提高约80℃。一起添加2重量%的粘土和1重量%的CNT。动态力学测量表明,与具有相同总填料含量(3 wt%)的相应二元壳聚糖/粘土或壳聚糖/ CNT纳米复合材料相比,壳聚糖/粘土-CNT的储能模量明显提高。对于溶剂蒸汽渗透性能,仅在壳聚糖/粘土-CNT三元纳米复合材料中观察到苯蒸汽阻隔性能大大提高,并且取决于粘土与CNT的比例。 XRD,SEM和TEM结果表明,粘土和碳纳米管都可以很好地分散在三元纳米复合材料中,而纳米管位于粘土薄片周围。通过同时使用粘土和碳纳米管,FT1R显示出填料与壳聚糖之间的相互作用得到改善。如神学测量所示,与具有相同总填料含量的相应二元纳米复合材料相比,三元纳米复合材料中观察到了大大增强的类固相行为。二维(2D)粘土薄片和一维(ID)CNTs对性能增强的独特协同作用可以暂时理解为,由于一维CNTs和2D粘土薄片结合在一起形成了很多堵塞的填料网络。我们的工作为通过使用不同尺寸的纳米填料一起制备高性能聚合物纳米复合材料提供了一个很好的例子。

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