High‐Performance Heterocyclic Aramid Fibers Reinforced by Graphene Oxide for Advanced Impact‐Resistant Applications

Z Zhengqiang Lyu (Key Laboratory of Multifunctional Nanomaterials and Smart Systems, Suzhou Institute of Nano‐Tech and Nano‐Bionics Chinese Academy of Sciences Suzhou China) H Hongbo Dai (School of Materials Science and Engineering Peking University Beijing China) X Xiangzheng Jia Z Ziyi Zhang J Jin Wang D Dengsen Yuan (Key Laboratory of Multifunctional Nanomaterials and Smart Systems, Suzhou Institute of Nano‐Tech and Nano‐Bionics Chinese Academy of Sciences Suzhou China) Q Qi Xu (School of Optical and Electronic Information (SOEI) and Wuhan National Laboratory for Optoelectronics (WNLO)) Y Ying Kong C Changwei Li E Enlai Gao (School of Civil Engineering, Wuhan University) K Kun Jiao (School of Materials Science and Engineering Peking University Beijing China) D Dongmei Hu Q Qingwen Li (Institute of Organ Transplantation, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology) J Jin Zhang

Abstract

ABSTRACT High‐performance fiber materials, poly(p‐phenylene‐benzimidazole‐terephthalamide) (PBIA) fibers, exhibit exceptional mechanical properties, and they are finding critical use in aerospace, ballistic protection, and other civilian areas. However, the insufficient orientation and weak lateral interactions of PBIA polymer chains limit their impact‐resistant applications. In this work, we report a strategy that significantly enhances the dynamic mechanical properties of heterocyclic aramid fibers via in situ polymerization of graphene oxide (GO) and wet spinning, achieving an ultrahigh dynamic strength of 10.63 GPa, which exceeds that of PBIA fibers by 47.23%. To simultaneously enhance the strength and toughness of PBIA, an ether‐group component was polymerized with GO, the dynamic toughness can reach 277.25 MJ m− 3 , which is 85.3% higher than that of PBIA fibers. The dynamic performance is attributed to improvements in contact area and interfacial energy. In laser‐induced microparticle impact tests, the composite fiber exhibits a markedly higher specific energy dissipation power than other high‐performance fibers. Importantly, large‐scale and flexible fabrics were woven and exhibit superior impact resistance, highlighting the practical potential of these fibers, which showed a 40.46% higher load than PBIA fabrics in drop‐hammer impact tests. This study presents a straightforward yet effective approach to enhancing the dynamic strength and toughness of PBIA fibers.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 23, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

Z

Zhengqiang Lyu

Key Laboratory of Multifunctional Nanomaterials and Smart Systems, Suzhou Institute of Nano‐Tech and Nano‐Bionics Chinese Academy of Sciences Suzhou China

H

Hongbo Dai

School of Materials Science and Engineering Peking University Beijing China

X

Xiangzheng Jia

Z

Ziyi Zhang

J

Jin Wang

D

Dengsen Yuan

Key Laboratory of Multifunctional Nanomaterials and Smart Systems, Suzhou Institute of Nano‐Tech and Nano‐Bionics Chinese Academy of Sciences Suzhou China

Q

Qi Xu

School of Optical and Electronic Information (SOEI) and Wuhan National Laboratory for Optoelectronics (WNLO)

Y

Ying Kong

C

Changwei Li

E

Enlai Gao

School of Civil Engineering, Wuhan University

K

Kun Jiao

School of Materials Science and Engineering Peking University Beijing China

D

Dongmei Hu

Q

Qingwen Li

Institute of Organ Transplantation, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology

J

Jin Zhang