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Fingerprinting Molecular Relaxation in Deformed Polymers

机译:变形聚合物中的指纹分子松弛

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The flow and deformation of macromolecules is ubiquitous in nature and industry, and an understanding of this phenomenon at both macroscopic and microscopic length scales is of fundamental and practical importance. Here, we present the formulation of a general mathematical framework, which could be used to extract, from scattering experiments, the molecular relaxation of deformed polymers. By combining and modestly extending several key conceptual ingredients in the literature, we show how the anisotropic single-chain structure factor can be decomposed by spherical harmonics and experimentally reconstructed from its cross sections on the scattering planes. The resulting wave-number-dependent expansion coefficients constitute a characteristic fingerprint of the macromolecular deformation, permitting detailed examinations of polymer dynamics at the microscopic level. We apply this approach to survey a long-standing problem in polymer physics regarding the molecular relaxation in entangled polymers after a large step deformation. The classical tube theory of Doi and Edwards predicts a fast chain retraction process immediately after the deformation, followed by a slow orientation relaxation through the reptation mechanism. This chain retraction hypothesis, which is the keystone of the tube theory for macromolecular flow and deformation, is critically examined by analyzing the fine features of the two-dimensional anisotropic spectra from small-angle neutron scattering by entangled polystyrenes. We show that the unique scattering patterns associated with the chain retraction mechanism are not experimentally observed. This result calls for a fundamental revision of the current theoretical picture for nonlinear rheological behavior of entangled polymeric liquids.
机译:大分子的流动和变形在自然界和工业界无处不在,因此从宏观和微观尺度上了解这一现象具有根本和实际的重要性。在这里,我们介绍了一个通用的数学框架,该框架可用于从散射实验中提取变形聚合物的分子弛豫。通过结合并适度扩展文献中的几个关键概念成分,我们展示了各向异性单链结构因子如何通过球谐分解并从散射平面上的横截面进行实验重建。由此产生的波数相关的膨胀系数构成了大分子变形的特征指纹,从而可以在微观水平上详细检查聚合物动力学。我们采用这种方法来调查高分子物理学中一个长期存在的问题,即大步变形后缠结聚合物中的分子弛豫问题。 Doi和Edwards的经典管理论预测,变形后立即有快速的链条回缩过程,然后通过复制机制缓慢取向松弛。通过分析缠结聚苯乙烯产生的小角度中子散射产生的二维各向异性光谱的精细特征,严格审查了链收缩假说,该假说是大分子流动和变形的管理论的基石。我们表明,与链收缩机制相关联的独特的散射模式没有实验观察到。该结果要求对缠结的聚合物液体的非线性流变行为的当前理论进行根本性的修改。

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