Thermoreversible Polymeric Nanocomposites

R. Bose, F. Picchioni, H. Muljana
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引用次数: 1

Abstract

Polymeric nanocomposites are widely used in applications such as structural materials, elec- tronics, energy, and biomedical as they synergistically combine the desired properties of the filler and the polymer. The emergent properties can be designed and tuned based not only on the choice of filler and polymer but also on the type of bond and interface created between the two components. When the bond between the two is covalent, the nanocomposites have superior mechanical characteristics. When this covalent bond is reversible, a combination of high impact resistance and high tensile strength is achieved. A well-known approach to achieve these reversible covalent bonds is via the Diels-Alder reaction between a diene and a dienophile. At elevated temperatures, the retro Diels-Alder reaction is dominant resulting in bond cleavage. This chapter reviews the different strategies involving Diels-Alder reactions at the polymer-filler interface. Various fillers have been researched including silica, carbon nanotubes, and graphene, which impart different mechanical and conductive properties to the nanocomposite. A variety of polymer matrices have been reported by various research - ers and are summarized here. The choice of diene and dienophile influences the rate of reversible reaction and thus the final properties as will be discussed.
热可逆聚合物纳米复合材料
高分子纳米复合材料将填料和聚合物的特性协同结合,广泛应用于结构材料、电子、能源和生物医学等领域。不仅可以根据填料和聚合物的选择,还可以根据两种组分之间形成的键和界面的类型来设计和调整涌现特性。当两者之间的键为共价时,纳米复合材料具有优异的力学性能。当这种共价键是可逆的,高抗冲击性和高抗拉强度的组合就实现了。实现这些可逆共价键的一种众所周知的方法是通过二烯和亲二烯之间的Diels-Alder反应。在高温下,Diels-Alder反应起主导作用,导致键解理。本章回顾了聚合物-填料界面上涉及Diels-Alder反应的不同策略。人们研究了各种填料,包括二氧化硅、碳纳米管和石墨烯,它们赋予纳米复合材料不同的机械和导电性能。各种各样的聚合物基质已经被不同的研究者报道,在这里进行总结。二烯和亲二烯试剂的选择影响可逆反应的速率,从而影响最终的性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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