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首页> 外文期刊>ACS Omega >Epitaxial Crystallization of Poly(ε-caprolactone) on Reduced Graphene Oxide at a Low Shear Rate by In Situ SAXS/WAXD Methods
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Epitaxial Crystallization of Poly(ε-caprolactone) on Reduced Graphene Oxide at a Low Shear Rate by In Situ SAXS/WAXD Methods

机译:用原位淋巴/蜡法以低剪切速率在低剪切速率下对聚(ε-己内酯)的外延结晶

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The interfacial interaction between polymers and reinforcements has a positive effect on the properties of polymer nanocomposites, and a further study on the evolution of this interfacial interaction under a shear field is conducive to reasonable regulation of the properties of polymer nanocomposites. For this purpose, epitaxial crystallization of poly(ε-caprolactone) (PCL) on reduced graphene oxide (RGO) is investigated by shearing at the shear rate of 3 s~(–1) by in situ synchrotron radiation. In situ two-dimensional small-angle X-ray scattering (2D SAXS) results suggest that the imposed shear field promotes the orientation of the polymer chains, resulting in the formation of a large periodic structure of PCL on the RGO surface. In addition, higher shear temperatures facilitate the conformational adjustment of the PCL molecular chain on RGO at the shear rate of 3 s~(–1), resulting in the formation of thicker lamellae. In situ two-dimensional wide-angle X-ray diffraction (2D WAXD) results show that shear enhances the crystallinity of the PCL/RGO nanocomposite and promotes the oriented growth of epitaxial and bulk crystals. The current findings can improve the understanding of the structural evolution behavior of PCL/RGO nanocomposites after shear and especially enhance dramatically our understanding of the underlying mechanism of influence of shear on interfacial epitaxial crystallization in polymer/graphene nanocomposite systems.
机译:聚合物和增强物之间的界面相互作用对聚合物纳米复合材料的性质具有阳性作用,并且进一步研究剪切场下该界面相互作用的进化有利于合理调节聚合物纳米复合材料的性质。为此目的,通过以3S〜(1)的剪切速率以原位同步辐射剪切来研究通过剪切剪切剪切速率,研究了聚(ε-己内酯)(PCL)的外延结晶。 原位二维小角X射线散射(2D SAX)结果表明,施加的剪切场促进聚合物链的取向,从而形成RGO表面上PCL的大周期性结构。此外,较高的剪切温度促进了PCL分子链以3S〜(-1)的剪切速率对RGO的构象调节,从而形成厚薄的薄片。 原位二维宽角X射线衍射(2D WAXD)结果表明,剪切增强了PCL / RGO纳米复合材料的结晶度,并促进外延和散装晶体的取向生长。目前的发现可以改善剪切后PCL / RGO纳米复合材料的结构演化行为的理解,特别提高我们对剪切对界面外延结晶在聚合物/石墨烯纳米复合体系中的界面外延结晶的潜在机制的理解。

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