Laboratório Nacional de Nanotecnologia para o Agronegócio (LNNA), Embrapa Instrumentação (CNPDIA), São Carlos (SP), Brazil.
Carbohydr Polym. 2013 Feb 15;92(2):1743-51. doi: 10.1016/j.carbpol.2012.11.019. Epub 2012 Nov 14.
In this paper the mechanical reinforcement of nano-sized brucite, Mg(OH)(2) in a series of bionanocomposite films based on starch was investigated. Brucite nanoplates with an aspect ratio of 9.25 were synthesized by wet precipitation and incorporated into starch matrices at different concentrations (0-7.5 wt.%). Scanning electron microscopy revealed a high degree of nanoplate dispersion within the starch bionanocomposites and good interfacial adhesion between the filler and matrix. The brucite nanoplates formed agglomerates at high concentrations. The reinforcement factor values of the bionanocomposites were higher than the values predicted from the Halphin-Tsai model, which was attributed mainly to the high surface area of the nanoplates. Brucite (1 wt.%) nearly doubled the elastic modulus of starch films. Thermogravimetric analyses indicated some interaction between starch and the brucite that modified their decomposition profiles. Mechanical tests of glycerol plasticized bionanocomposites showed that the reinforcing efficiency of brucite remained high even at 10 wt.% and 20 wt.% of plasticizer.
本文研究了一系列基于淀粉的生物纳米复合材料薄膜中纳米级水镁石(Mg(OH)(2))的机械增强作用。通过湿沉淀法合成了纵横比为 9.25 的水镁石纳米板,并以不同浓度(0-7.5wt.%)掺入到淀粉基质中。扫描电子显微镜显示,纳米板在淀粉生物纳米复合材料中具有很高的分散度,并且在填充剂和基质之间具有良好的界面粘附性。纳米板在高浓度下形成团聚体。生物纳米复合材料的增强因子值高于 Halphin-Tsai 模型的预测值,这主要归因于纳米板的高表面积。水镁石(1wt.%)使淀粉薄膜的弹性模量几乎增加了一倍。热重分析表明,淀粉和水镁石之间存在一些相互作用,改变了它们的分解曲线。甘油增塑生物纳米复合材料的力学性能测试表明,即使在 10wt.%和 20wt.%的增塑剂含量下,水镁石的增强效率仍然很高。