TY - JOUR
T1 - Deprotonation-induced liquid-solid co-precipitation of AF/PEEK composites with high toughness and anti-wear performance
AU - Fu, Mingyu
AU - Lei, Shiyao
AU - Luo, Xuan
AU - Fan, Linze
AU - Xiao, Yifei
AU - Liu, Xuqing
AU - Yu, Hong
AU - Du, Cheng Feng
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/12
Y1 - 2026/12
N2 - Aromatic polyamide fibers (AF) offer high strength and low density but suffer from poor interfacial affinity with polyether ether ketone (PEEK) due to their high crystallinity and inert surface, leading to inhomogeneous products and degraded mechanical properties. Here, a deprotonation-induced liquid–solid co-precipitation strategy is proposed to fabricate homogeneous AF/PEEK composites. Deprotonation reversibly disrupts intermolecular hydrogen bonds in AF, enabling their dissociation in the liquid phase. Subsequent dispersion of PEEK powders followed by co-precipitation yields homogeneous composite powders, which are then sintered into bulk materials. The effects of AF content (0–20 wt%) on microstructure, mechanical, and tribological properties were systematically investigated. At 10 wt% AF content, the composite achieves optimal performance, with a fracture toughness of 2.74 MPa·m1/2 (97 % improvement over neat PEEK), a tensile strength of 83.64 MPa (18 % improvement) and a low wear rate of 3.44 ± 0.27 × 10−6 mm3/N·m (42 % reduction). Mechanistic analysis reveals that deprotonation introduces carboxyl groups onto the AF surface and facilitates π-π stacking with PEEK, establishing strong interfacial bonding that effectively dissipates fracture energy. Additionally, uniformly dispersed AF promotes a stable protective tribolayer, suppressing debris spalling and third-body wear. This work achieves simultaneous optimization of AF dispersion and interfacial bonding, offering a new pathway for high-performance thermoplastic composites.
AB - Aromatic polyamide fibers (AF) offer high strength and low density but suffer from poor interfacial affinity with polyether ether ketone (PEEK) due to their high crystallinity and inert surface, leading to inhomogeneous products and degraded mechanical properties. Here, a deprotonation-induced liquid–solid co-precipitation strategy is proposed to fabricate homogeneous AF/PEEK composites. Deprotonation reversibly disrupts intermolecular hydrogen bonds in AF, enabling their dissociation in the liquid phase. Subsequent dispersion of PEEK powders followed by co-precipitation yields homogeneous composite powders, which are then sintered into bulk materials. The effects of AF content (0–20 wt%) on microstructure, mechanical, and tribological properties were systematically investigated. At 10 wt% AF content, the composite achieves optimal performance, with a fracture toughness of 2.74 MPa·m1/2 (97 % improvement over neat PEEK), a tensile strength of 83.64 MPa (18 % improvement) and a low wear rate of 3.44 ± 0.27 × 10−6 mm3/N·m (42 % reduction). Mechanistic analysis reveals that deprotonation introduces carboxyl groups onto the AF surface and facilitates π-π stacking with PEEK, establishing strong interfacial bonding that effectively dissipates fracture energy. Additionally, uniformly dispersed AF promotes a stable protective tribolayer, suppressing debris spalling and third-body wear. This work achieves simultaneous optimization of AF dispersion and interfacial bonding, offering a new pathway for high-performance thermoplastic composites.
KW - AF/PEEK composites
KW - Liquid-solid co-crystallization
KW - Mechanical properties
KW - Wear resistance
UR - https://www.scopus.com/pages/publications/105046242483
U2 - 10.1016/j.compositesa.2026.110148
DO - 10.1016/j.compositesa.2026.110148
M3 - 文章
AN - SCOPUS:105046242483
SN - 1359-835X
VL - 211
JO - Composites Part A: Applied Science and Manufacturing
JF - Composites Part A: Applied Science and Manufacturing
M1 - 110148
ER -