Stretch-Induced Structural Ordering and Orientation for Tensile Yield Behavior and Anisotropic Optical Property of Molecular Granular Materials.

Wei Liu-Fu, Shengqiu Liu, Jiadong Chen, Jia-Fu Yin, Panchao Yin
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Abstract

The densely packed sub-nm particles, molecular granular materials (MGMs), represent a new class of functional materials that deliver distinct mechanical properties from polymers and conventional granular materials. However, their costly synthesis and the vague understanding of their mechanical property hinder extensive progress. Herein, the supramolecular complexation approach is developed for the feasible construction of MGMs with hierarchical structures, while in situ small angle X-ray scattering (SAXS) is applied to monitor the mechanical deformation of MGMs for microscopic understanding. Amphiphilic oligomers are assembled from the ionic attraction of 1 nm molecular clusters and further pack into ordered hexagonal phases (HEX1) driven by hydrophobic interaction. Interestingly, stretching can induce structural orientation, and thus triggering the transformation of HEX1 to another hexagonal phase (HEX2) with denser packing, accounting for the tensile yield behavior of the MGMs. The supramolecular structure endows hierarchical structure relaxation dynamics, enabling their unique viscoelasticity with a resilient rubbery plateau even at high temperatures. Their flexibility renders the capability to facilely process the MGMs into highly oriented films and coatings with anisotropic properties for potential applications in optical device fabrications.

拉伸诱导分子颗粒材料的拉伸屈服行为和各向异性光学性能的结构排序和取向。
分子颗粒材料(mgm)是一种新型的功能材料,具有与聚合物和传统颗粒材料不同的机械性能。然而,它们昂贵的合成和对其力学性质的模糊理解阻碍了它们的广泛进展。本文采用超分子络合方法构建了具有分层结构的MGMs,并采用原位小角x射线散射(SAXS)技术监测了MGMs的力学变形,以了解其微观结构。两亲性低聚物由1 nm分子簇的离子吸引组装而成,并在疏水相互作用的驱动下进一步堆积成有序的六方相(HEX1)。有趣的是,拉伸可以诱导结构取向,从而触发HEX1向另一个具有更密集堆积的六边形相(HEX2)的转变,这解释了mgm的拉伸屈服行为。超分子结构赋予了分层结构松弛动力学,使其具有独特的粘弹性,即使在高温下也具有弹性的橡胶平台。它们的灵活性使得mgm能够很容易地加工成具有各向异性特性的高取向薄膜和涂层,在光学器件制造中具有潜在的应用前景。
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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