High Interfacial Shear Strength and High Tensile Strength in Heterocyclic Aramid Fibers with Improved Interchain Interaction

Author:

Luo Jiajun12,Wen Yeye123,Li Tao2,Jia Xiangzheng4,Lei Xudong56,Zhang Ziyi1,Xiao Zhihua12,Wu Xianqian56,Gao Zhenfei2,Gao Enlai4,Jiao Kun12,Zhang Jin12ORCID

Affiliation:

1. Beijing National Laboratory for Molecular Sciences School of Materials Science and Engineering College of Chemistry and Molecular Engineering Academy for Advanced Interdisciplinary Studies Beijing Science and Engineering Center for Nanocarbons Peking University Beijing 100871 China

2. Beijing Graphene Institute (BGI) Beijing 100095 China

3. Advanced Research Institute of Multidisciplinary Science Beijing Institute of Technology Beijing 100081 China

4. Department of Engineering Mechanics School of Civil Engineering Wuhan University Wuhan 430072 China

5. Institute of Mechanics Chinese Academy of Sciences Beijing 100190 China

6. School of Engineering Science University of Chinese Academy of Sciences Beijing 100049 China

Abstract

AbstractAs a typical kind of high‐performance fibers, heterocyclic aramid fibers are widely used to reinforce resins to prepare advanced lightweight composites with high mechanical performances. However, their poor interfacial shear strength limits the combination with resins and leads to undesirable interfacial strength of composites. Thus, heterocyclic aramid fibers with high interfacial shear strength and high tensile strength are highly desired. Herein, heterocyclic aramid fibers with a high interfacial shear strength of 40.04 ± 2.41 MPa and a high tensile strength of 5.08 ± 0.24 GPa are reported, in which the nitrile‐modified poly‐(benzimidazole‐terephthalamide) polymer chains are crosslinked by azide‐functionalized graphene oxide nanosheets. The improved interchain interaction can conquer the splitting of nanofibrils and strengthen the skin‐core layer of heterocyclic aramid fibers, while the graphene oxide can induce an ordered arrangement of polymer chains to improve the crystallinity and orientation degree of fibers. These two effects account for the high interfacial shear strength and high tensile strength of heterocyclic aramid fibers. These findings have provided a strategy to efficiently enhance the interfacial shear strength as well as the tensile strength of high‐performance fibers.

Funder

Beijing Municipal Science and Technology Commission, Adminitrative Commission of Zhongguancun Science Park

National Natural Science Foundation of China

Beijing National Laboratory for Molecular Sciences

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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