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纳米改性环氧树脂:基于氧化石墨烯的复合结构对力学性能的影响

Nano-modified epoxy: the effect of GO-based complex structures on mechanical performance.

作者信息

Kelnar Ivan, Zhigunov Alexander, Kaprálková Ludmila, Krejčíková Sabina, Dybal Jiří, Janata Miroslav

机构信息

Institute of Macromolecular Chemistry, Czech Academy of Sciences Heyrovského nám. 2 162 06 Praha Czech Republic

出版信息

RSC Adv. 2020 Mar 20;10(19):11357-11364. doi: 10.1039/d0ra00202j. eCollection 2020 Mar 16.

Abstract

The application of nanofillers (NFs) in multicomponent polymer systems is accompanied by important structure-directing effects that are more marked in partially miscible systems, such as polymer-modified epoxy. This study deals with rubber-modified epoxy using different combinations of GO and amine-terminated butadiene-acrylonitrile copolymer (ATBN), including and pre-made grafting. Moreover, GO grafted planar epoxy groups or solely edge-localized carboxyls was used. It is shown that the grafted ATBN chains promote the assembly of GO--ATBN into nacre-mimicking lamellar structures instead of usual exfoliation in thermoplastics. This complex structure of elastically embedded GO leads to the best mechanical performance. It is obvious that a small concentration of the grafted polymer exceeds the contribution of a higher concentration of separately added ATBN. The results highlight the important effect of the degree of grafted chains and geometry of the internal structure of the self-assembled arrays and their effect on the mechanical performance.

摘要

纳米填料(NFs)在多组分聚合物体系中的应用伴随着重要的结构导向效应,这种效应在部分互溶体系中更为显著,例如聚合物改性环氧树脂。本研究涉及使用氧化石墨烯(GO)和胺端基丁腈橡胶共聚物(ATBN)的不同组合对橡胶改性环氧树脂进行研究,包括原位和预制接枝。此外,还使用了接枝到平面环氧基团或仅边缘定位羧基上的GO。结果表明,接枝的ATBN链促进了GO-ATBN组装成仿珍珠层状结构,而不是热塑性塑料中常见的剥离。这种弹性嵌入GO的复杂结构导致了最佳的机械性能。显然,少量接枝聚合物的贡献超过了高浓度单独添加ATBN的贡献。结果突出了接枝链的程度和自组装阵列内部结构的几何形状对机械性能的重要影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df48/9050425/7e257cb72e6a/d0ra00202j-f1.jpg

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