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Temperature dependence of the interfacial bonding characteristics of silica/styrene butadiene rubber composites a molecular dynamics simulation study

机译:二氧化硅/苯乙烯丁二烯橡胶复合材料的界面键合特性的温度依赖性分子动力学模拟研究

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Based on our previous studies on the modification of in-chain styrene butadiene rubber (SBR) using 3-mercaptopropionic acid as well as its composites filled with silica, we further constructed two types of models (amorphous and layered) to investigate the temperature dependence of the interfacial bonding characteristics of silica/SBR composites via molecular dynamics (MD) simulation. The competing effects of rubber–rubber interactions and filler–rubber interactions were identified, and the relationship between the competing effects and the temperature was determined. Besides this, the effect of temperature on the mobility and distribution of SBR chains on the surface of silica was investigated. It was found that the stronger the interfacial interactions, the less sensitive the motion of SBR chains to temperature. Finally, the number and length of hydrogen bonds as a function of temperature were analyzed. These simulated results deepened the understanding of interface temperature dependence of the silica/SBR composites and gave a molecular level explanation for the existence of an optimum modifier content (14.2 wt%) that is temperature independent.
机译:基于我们以前关于使用3-巯基丙烯酸的链苯乙烯丁二烯橡胶(SBR)改性的研究以及填充二氧化硅的复合材料,我们进一步构建了两种类型的模型(无定形和分层),以研究温度依赖性二氧化硅/ SBR复合材料通过分子动力学(MD)模拟的界面键合特性。鉴定了橡胶 - 橡胶相互作用和填料 - 橡胶相互作用的竞争效果,测定了竞争效应与温度之间的关系。除此之外,研究了温度对二氧化硅表面上SBR链的迁移和分布的影响。发现界面相互作用越强,SBR链的运动越少。最后,分析了作为温度函数的氢键的数量和长度。这些模拟结果深化了对二氧化硅/ SBR复合材料的界面温度依赖性的理解,并对温度无关的最佳改性剂含量(14.2重量%)进行了分子水平解释。

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