Effectiveness of Natural Polymers as Surface Modifiers in Enhancing Reinforcing Action of Silica in Carboxylated NBR Latices

R. Ramasinghe, N. Liyanage
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引用次数: 1

Abstract

Reinforcement of Carboxylated Acrylonitrile Butadiene rubber (XNBR) latex using surface modified silica and nanosilica has been investigated in this study. Surface modifiers are special category of substances used to impart better interactions between filler and latex in polymer-latex industry. Modification of both micro silica and nano silica particles’ surface with natural method (NPs) was conferred by an in-situ surface modification process using cellulose, gelatin, chitosan and collagen separately. The reinforcement effect of surface modified silica could be assessed by determining swelling, crosslink density, tensile and tear properties of vulcanized latex films. The distribution of modified silica within the latex films was studied by observing the cross sections of films through a metallurgical microscope. In this study cellulose was found to be the most effective surface modifier probably by discouraging filler/filler interactions while encouraging rubber/filler interactions.
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天然聚合物作为表面改性剂增强羧基丁腈橡胶中二氧化硅补强作用的有效性
研究了表面改性二氧化硅和纳米二氧化硅对羧化丁腈橡胶(XNBR)胶乳的增强作用。表面改性剂是高分子乳胶工业中用于改善填料与乳胶相互作用的一类特殊物质。分别采用纤维素、明胶、壳聚糖和胶原蛋白对微二氧化硅和纳米二氧化硅颗粒进行了原位表面改性。通过测定硫化乳胶膜的膨胀、交联密度、拉伸和撕裂性能,可以评价表面改性二氧化硅的增强效果。通过金相显微镜观察乳胶膜的横截面,研究了改性二氧化硅在乳胶膜中的分布。在这项研究中,纤维素被发现是最有效的表面改性剂,可能是通过抑制填料/填料的相互作用而促进橡胶/填料的相互作用。
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