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解析表面改性对碳纤维/环氧树脂复合材料极限性能的影响

Unravelling the Influence of Surface Modification on the Ultimate Performance of Carbon Fiber/Epoxy Composites.

作者信息

Demchuk Zoriana, Zhu Jiadeng, Li Bingrui, Zhao Xiao, Islam Nurul Md, Bocharova Vera, Yang Guang, Zhou Hongyu, Jiang Yijie, Choi Wonbong, Advincula Rigoberto, Cao Peng-Fei

机构信息

Chemical Sciences Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37830, United States.

The Bredesen Center for Interdisciplinary Research and Graduate Education, University of Tennessee, Knoxville, Tennessee 37996, United States.

出版信息

ACS Appl Mater Interfaces. 2022 Oct 12;14(40):45775-45787. doi: 10.1021/acsami.2c11281. Epub 2022 Sep 28.

Abstract

The overall performance of polymer composites depends on not only the intrinsic properties of the polymer matrix and inorganic filler but also the quality of interfacial adhesion. Although many reported approaches have been focused on the chemical treatment for improving interfacial adhesion, the examination of ultimate mechanical performance and long-term properties of polymer composites has been rarely investigated. Herein, we report carbon fiber (CF)/epoxy composites with improved interfacial adhesion by covalent bonding between CFs and the epoxy matrix. This leads to the improved ultimate mechanical properties and enhanced thermal aging performance. Raman mapping demonstrates the formation of an interphase region derived from the covalent bonding between CFs and the epoxy matrix, which enables the uniform fiber distribution and eliminates phase separation during thermal cycling. The covalent attachment of the CF to the epoxy matrix suppresses its migration during temperature fluctuations, preserving the mechanical performance of resulting composites under the thermal aging process. Furthermore, the finite elemental analysis reveals the effectiveness of the chemical treatment of CFs in improving the interfacial strength and toughness of silane-treated CF/epoxy composites. The insight into the mechanical improvement of CF/epoxy composites suggests the high potential of surface modification of inorganic fillers toward polymer composites with tunable properties for different applications.

摘要

聚合物复合材料的整体性能不仅取决于聚合物基体和无机填料的固有特性,还取决于界面粘合的质量。尽管许多已报道的方法都集中在通过化学处理来改善界面粘合,但对聚合物复合材料的极限力学性能和长期性能的研究却很少。在此,我们报道了通过碳纤维(CF)与环氧基体之间的共价键合实现界面粘合改善的碳纤维/环氧复合材料。这导致了极限力学性能的提高和热老化性能的增强。拉曼映射表明形成了一个由CF与环氧基体之间的共价键合产生的界面区域,这使得纤维分布均匀,并消除了热循环过程中的相分离。CF与环氧基体的共价连接抑制了其在温度波动期间的迁移,从而在热老化过程中保持了所得复合材料的力学性能。此外,有限元分析揭示了CF化学处理在提高硅烷处理的CF/环氧复合材料的界面强度和韧性方面的有效性。对CF/环氧复合材料力学性能改善的深入了解表明,无机填料表面改性对于具有不同应用可调性能的聚合物复合材料具有很大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f3e5/9562280/91b29e06f471/am2c11281_0002.jpg

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