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Advances in toughened polymer materials by structured rubber particles

机译:结构化橡胶颗粒的增韧聚合物材料进展

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Many polymer materials are brittle and hence susceptible to fracture, especially in the presence of notches, scratches, or internal defects. This limits the application of polymer-based materials across a wide range of technological fields. The toughening of polymer materials by developing a two-phase structure with the use of soft rubber as the dispersed phase has gained considerable attention because of their commercial importance. Over the past several decades, homogeneous rubber microparticle toughening and related toughening mechanisms have been extensively investigated. Currently, rubber toughening is being developed considering the design and control of rubber structures for improving the toughness, and realizing the rigidity-toughness balance with minimal loss of heat resistance of polymer materials. This paper reviews the state-of-the-art research progress of polymer materials toughened by structured rubbers. To provide a general understanding on rubber toughening, we first briefly introduce the classification of polymer materials that require toughening, common strategies for improving the interfacial adhesion between rubber particles and polymer matrices, and homogeneous rubber microparticle toughening of polymer materials. Further, four categories of structured rubber toughening are discussed in detail, which includes heterogeneous rubber microparticle toughening, oriented anisotropic rubber microparticle toughening, rubber nanoparticle toughening and bimodal size distributed rubber particle toughening. Furthermore, the relationship between the structure of rubbers and the properties of modified polymer materials, such as toughness, modulus and heat resistance, is discussed. The influence of the interface or interphase on these properties is highlighted. Finally, future research endeavors and possible directions for further progress in this field are outlined. (C) 2019 Elsevier B.V. All rights reserved.
机译:许多聚合物材料是脆性的,因此易受裂缝的影响,特别是在缺口,划痕或内部缺陷存在下。这限制了聚合物基材料在广泛的技术领域中的应用。通过在使用软橡胶作为分散相的使用时,通过使用软橡胶的两相结构增韧,因为它们的商业重要性得到了相当大的关注。在过去的几十年中,已经广泛研究了均匀的橡胶微粒增韧和相关的增韧机制。目前,考虑到橡胶结构的设计和控制,正在开发橡胶增韧,以改善韧性,并实现聚合物材料的耐热性损失的刚性韧性平衡。本文综述了由结构橡胶增韧的高分子材料的最先进的研究进展。为了提供对橡胶增韧的一般性理解,我们首先简要介绍需要增韧的聚合物材料的分类,用于改善橡胶颗粒和聚合物基质之间的界面粘附的常见效果,以及聚合物材料的均匀橡胶微粒增韧。此外,详细讨论了四种类别的结构化橡胶增韧,其包括异质橡胶微粒增韧,取向各向异性橡胶微粒增韧,橡胶纳米粒子增韧和双峰尺寸分布橡胶颗粒增韧。此外,讨论了橡胶结构与改性聚合物材料的性质之间的关系,例如韧性,模量和耐热性。突出显示界面或界面对这些属性的影响。最后,概述了未来的研究努力和对该领域进一步进步的可能指示。 (c)2019年Elsevier B.V.保留所有权利。

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