4.6 Article

Random copolymer membrane coated PBO fibers with significantly improved interfacial adhesion for PBO fibers/cyanate ester composites

Journal

CHINESE JOURNAL OF AERONAUTICS
Volume 34, Issue 2, Pages 659-668

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.cja.2020.03.007

Keywords

RAFT polymerization; Membrane; PBO fibers; Bisphenol A cyanate (BADCy) resins; Interfacial adhesion

Funding

  1. National Scientific Research Project
  2. China Aerospace Science and Industry Corporation [2019HTXG]
  3. Fundamental Research Funds for the Central Universities [310201911qd003]
  4. China Postdoctoral Science Foundation [2019M653735]

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This study successfully increased the surface roughness of PBO fibers through a modification method, enhancing their interfacial compatibility with resin matrix and improving the single fiber pull-out strength, while maintaining excellent tensile strength. The research provides a strong theoretical basis and technical support for controlling the surface structure and chemistry of inert substrates.
Poly(p-phenylene-2,6-benzobisoxazole) (PBO) fibers possess excellent dielectric, mechanical properties and heat resistance. However, the surface of PBO fibers is smooth and highly chemical inert, resulting in poor interfacial compatibility to polymer matrix, which severely limits its wider application in high-performance fiber-reinforced resin matrix composites. In this work, random copolymers (P(S-co-BCB-co-MMA)) containing benzocyclobutene in the side-chain were synthesized by reversible addition-fragmentation chain transfer (RAFT) polymerization, which were then utilized to form dense random copolymer membrane on the surface of PBO fibers by thermally cross-linking at 250 degrees C (PBO@P fibers). Four kinds of synthesized P(S-co-BCB-co-MMA) with different number-average molar mass (M-n) were well controlled and possessed narrow dispersity. When the Mn was 32300, the surface roughness of PBO@P fibers was increased from 11 nm (PBO fibers) to 39 nm. In addition, PBO@P fibers presented the optimal interfacial compatibility with bisphenol A cyanate (BADCy) resins. And the single fiber pull-out strength of PBO@P fibers/BADCy micro-composites was 4.5 MPa, increasing by 45.2% in comparison with that of PBO fibers/BADCy micro-composites (3.1 MPa). Meantime, PBO@P fibers still retained excellent tensile strength (about 5.1 GPa). Overall, this work illustrates a simple and efficient surface functionalization method, which would provide a strong theoretical basis and technical support for controlling the surface structure & chemistry of inert substrates. (C) 2020 Chinese Society of Aeronautics and Astronautics. Production and hosting by Elsevier Ltd.

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