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Review on development of natural rubberanoclay nanocomposites

机译:天然橡胶/纳米粘土纳米复合材料的研究进展

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The advantages of nanocomposites containing single silicate layers uniformly dispersed in a polymer matrix were first demonstrated by researchers at Toyota in Japan, who developed nylon-6 nanocomposites and published in 1993. Polymer-nanoclay nanocomposites have attracted the attention of many researchers thereafter due to their outstanding mechanical and barrier properties. This concept is first applied to synthesis of plasticsanoclay nanocomposites and then expanded to preparation of rubberanoclay nanocomposites, since few years later. The various types of synthetic rubbers, such as silicon rubber, nitrile rubber and epoxy rubber, were used to prepare nanocomposites using different techniques, namely, melt intercalation, in situ intercalative polymerization, exfoliation-adsorption and template synthesis, etc. Natural rubber (NR) was also used to prepare nanocomposites using the same techniques but with some modifications in the last decade. Nowaday's nanocomposites are widely developed in NR latex industry to achieve required properties with minimum use of clay content. NRanoclay nanocomposites exhibit markedly improved properties when compared to pure NR or their traditional composites. Most notable properties are increased tensile properties, gas barrier properties and heat distortion temperature, resistance to small molecule permeation, increase in atomic oxygen resistance and retention of impact strength. Tensile strength and modulus were recorded in current research as enhanced by more than two times or even ten times. It was noticed that obtaining a fully exfoliated structure is not at the desired level. Nanoclay nanocomposites are considered as fully exfoliated when inter gallery distance is greater than 10 nm but it was not achieved in many research work. Establishment of exfoliated structures in nanocomposites prepared in industrial scale is the major challenge that NR industry faces at present. NRanoclay nanocomposites produced with existing te- hniques develop high property fluctuations. Therefore, it is necessary to develop a technique to minimize property fluctuations and to obtain a reliable NR based product. It is predicted by this review that co-coagulation technique is the most promising and potential technique to fulfill the requirements of developing a NRanoclay nanocomposite. Use of modified nanoclays like Organoclays will aid to obtain a reliable NR based product.
机译:日本丰田公司的研究人员首先证明了含有均匀分散在聚合物基质中的单硅酸盐层的纳米复合材料的优势,该公司开发了尼龙6纳米复合材料,并于1993年发表。杰出的机械性能和阻隔性能。自几年后,这一概念首先应用于塑料/纳米粘土纳米复合材料的合成,然后扩展到橡胶/纳米粘土纳米复合材料的制备。各种类型的合成橡胶(例如硅橡胶,丁腈橡胶和环氧橡胶)用于通过不同技术(例如熔融插层,原位插层聚合,剥离-吸附和模板合成等)制备纳米复合材料。天然橡胶(NR )也被用于使用相同的技术来制备纳米复合材料,但在最近十年中进行了一些修改。如今,纳米乳胶在NR乳胶工业中得到了广泛的开发,目的是在减少粘土含量的情况下达到所需的性能。与纯天然橡胶或其传统复合材料相比,天然橡胶/纳米粘土纳米复合材料的性能显着提高。最显着的性能是增加的拉伸性能,阻气性和热变形温度,对小分子渗透的抵抗力,对原子氧的抵抗力的提高以及冲击强度的保持。在当前研究中记录的拉伸强度和模量提高了两倍甚至十倍以上。注意到获得完全剥离的结构不在期望的水平。当画廊间距离大于10 nm时,纳米粘土纳米复合材料被认为完全剥落,但许多研究工作并未实现。在工业规模制备的纳米复合材料中建立剥离结构是NR行业目前面临的主要挑战。用现有技术生产的NR /纳米粘土纳米复合材料会产生较高的性能波动。因此,有必要开发一种使性能波动最小化并获得可靠的基于NR的产品的技术。通过这篇综述可以预见,共混凝技术是满足开发NR /纳米粘土纳米复合材料要求的最有前途和潜在的技术。使用有机粘土等改性纳米粘土将有助于获得可靠的基于NR的产品。

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