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Infrared polarimetry: gaining a molecular view of polymer viscoelasticity

机译:红外偏振物:获得聚合物粘弹性的分子视图

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Recent exciting advances has been made using infrared (IR) diode lasers to obtain sensitive and rapid measurements of molecular- level dynamics that control polymer material properties. Infrared diodes provide a bright, nearly monochromatic, polarized source that is excellent for use in polarimetry. Optical polarimetry is the measurement of the state of polarization of light. It is a powerful technique for studying molecular and microstructural anisotropy in a sample by measuring how the sample alters the polarization of a transmitted beam. In polymers, it is precisely such molecular anisotropy that underlies their viscoelastic properties. As theories are developed to predict the relaxation dynamics of individual parts of a polymer molecule, and of different species in polymer blends, there is increasing interest in experimental methods to distinguish these dynamics. Infrared polarimetry is extremely valuable in this regard, not only because of the direct relationship between the IR dichroism and molecular orientation, but also because it is amenable to labeling. The present paper reviews the basis of this technique and its application to study the effects of polydispersity on melt rheology, and the relaxation dynamics at different positions along a polymer chain. It concludes with an overview of research in progress and future problems to be tackled.
机译:最近使用红外线(IR)二极管激光器进行了激发促进,以获得控制聚合物材料性能的分子级动力学的敏感和快速测量。红外二极管提供优异的偏振物优异的明亮,几乎单色的极化源。光学偏振基是光的光度的测量。通过测量样品改变透射光束的偏振来研究样品中的分子和微观结构各向异性的强大技术。在聚合物中,正是这样的分子各向异性,其粘弹性地掩盖了它们的粘弹性。随着理论以预测聚合物分子的个体部分的弛豫动态,以及在聚合物共混物中的不同物种,对实验方法的兴趣越来越感兴趣,以区分这些动态。在这方面,红外偏振基极为有价值,而不仅仅是因为IR二分形式与分子取向之间的直接关系,而且因为它适用于标记。本文评价该技术的基础及其应用,以研究多分散性对熔体流变学的影响,以及沿着聚合物链的不同位置处的松弛动力学。它概述了进步和未来问题的研究概述。

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