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ELASTOMERIC COMPOSITES BASED ON NANOSPHERICAL PARTICLES AND CARBON NANOTUBES: A COMPARATIVE STUDY

机译:基于纳米颗粒和碳纳米管的弹性复合材料的对比研究

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The reinforcement of elastomeric materials by addition of mineral fillers represents one of the most important aspects in the field of rubber science and technology. The improvement in mechanical properties arises from hydrodynamic effects depending mainly on the amount of filler and the aspect ratio of the particles and also on polymer-filler interactions depending on the surface characteristics of the filler particles and the chemical nature of the polymer. The past few years have seen the extensive use of nanometer-scale particles of different morphologies on account of the small size of the filler and the corresponding increase in the surface area that allow a considerable increase in mechanical properties even at very low filler loading. Among these nanoparticles,spherical particles (such as silica or titania) generated in situ by the sol-gel process and carbon nanotubes are typical examples of materials used as a nanosize reinforcing additive. Specific features of filled elastomers are discussed through the existing literature and through results of the author's research based on poly(dimethylsiloxane) filled with spherical silica or titania particles and on styrene-butadiene rubber filled with multiwall carbon nanotubes. The reinforcing ability of each type of filler is discussed in terms of morphology, state of dispersion (investigated by transmission electron microscopy, atomic force microscopy, small-angle neutron scattering), and mechanical and electrical properties. In addition, the use of molecular spectroscopies provides valuable information on the polymer-filler interface. Spherical silica and titania spherical particles are shown to exhibit two distinct morphologies, two different polymer-filler interfaces that influence the mechanical properties of the resulting materials. The superiority of carbon nanotubes over carbon black for mechanical reinforcement and electrical conduction is mainly attributed to their large aspect ratio rather than to strong polymer-filler interactions. The use of hybrid fillers (carbon nanotubes in addition to carbon black or silica, for example) has been shown to give promising results by promoting an enhancement of mechanical and electrical properties with regard to each single filler.
机译:通过添加矿物填​​料来增强弹性体材料是橡胶科学和技术领域中最重要的方面之一。机械性能的改善来自于流体动力学效应,该流体动力学效应主要取决于填料的量和颗粒的长径比,还取决于取决于填料颗粒的表面特性和聚合物的化学性质的聚合物-填料相互作用。在过去的几年中,由于填料的尺寸小和表面积的相应增加而广泛使用了不同形态的纳米级颗粒,即使在非常低的填料载荷下,也可以显着提高机械性能。在这些纳米颗粒中,通过溶胶-凝胶法原位产生的球形颗粒(例如二氧化硅或二氧化钛)和碳纳米管是用作纳米尺寸增强添加剂的材料的典型实例。通过现有文献和作者基于填充有球形二氧化硅或二氧化钛颗粒的聚(二甲基硅氧烷)和填充有多壁碳纳米管的丁苯橡胶的研究结果,讨论了填充弹性体的具体特征。从形态,分散状态(通过透射电子显微镜,原子力显微镜,小角中子散射研究)以及机械和电气性能方面讨论了每种填料的增强能力。另外,分子光谱的使用在聚合物-填料界面上提供了有价值的信息。球形二氧化硅和二氧化钛球形颗粒显示出两种不同的形态,两种不同的聚合物-填料界面影响所得材料的机械性能。在机械增强和导电方面,碳纳米管相对于炭黑的优越性主要归因于其大的长径比,而不是由于强的聚合物-填料相互作用。通过使用混合填料(例如,除了炭黑或二氧化硅以外的碳纳米管),通过促进每种填料的机械和电气性能的增强,已显示出令人鼓舞的结果。

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