TY - JOUR
T1 - MXene-Controlled PTFE Release for Ultra-Low Friction PEEK Composites
AU - Du, Cheng Feng
AU - Xue, Lili
AU - Wang, Mengzhao
AU - Fu, Mingyu
AU - Wu, Ruoyu
AU - Lei, Shiyao
AU - Qi, Weihong
AU - Meng, Conghui
AU - Yu, Hong
AU - Liu, Xuqing
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2026/2/16
Y1 - 2026/2/16
N2 - Poly(ether-ether-ketone) (PEEK) is a key structural material in lightweight robots, yet its poor self-lubricity limits use in moving components. This study develops PEEK-based composites incorporating poly(tetra-fluoroethylene) (PTFE) as the lubricating phase and Ti3C2Tx MXene as transfer film mediator is designed and fabricated via hot-press sintering. Their mechanical properties are studied via a compressive test, and their tribological performances are probed upon sliding against the ZrO2 ball with a linear reciprocating ball-on-plane configuration. By synergistically regulating the content of PTFE and MXene, the threshold content of PTFE and MXene for achieving an ultra-low friction can be obtained, which strengthens the composites and thus contributes to ultra-low wear. At an optimal PTFE content of 10 wt.%, MXene addition doubles the engineering strain, accompanied by an 11% increase in compressive strength. Meanwhile, the increased content of Ti3C2Tx continuously reduces the coefficient of friction to 0.060 ± 0.001, which is 26.83% lower than that of the composite without MXene, while keeping the wear rate at a low level of 10−6 mm3 N−1·m−1. According to the molecular dynamics simulation, the excellent anti-friction and anti-wear performance can be attributed to the controlled release of PTFE by Ti3C2Tx MXene, which originates from their strong interfacial bonding.
AB - Poly(ether-ether-ketone) (PEEK) is a key structural material in lightweight robots, yet its poor self-lubricity limits use in moving components. This study develops PEEK-based composites incorporating poly(tetra-fluoroethylene) (PTFE) as the lubricating phase and Ti3C2Tx MXene as transfer film mediator is designed and fabricated via hot-press sintering. Their mechanical properties are studied via a compressive test, and their tribological performances are probed upon sliding against the ZrO2 ball with a linear reciprocating ball-on-plane configuration. By synergistically regulating the content of PTFE and MXene, the threshold content of PTFE and MXene for achieving an ultra-low friction can be obtained, which strengthens the composites and thus contributes to ultra-low wear. At an optimal PTFE content of 10 wt.%, MXene addition doubles the engineering strain, accompanied by an 11% increase in compressive strength. Meanwhile, the increased content of Ti3C2Tx continuously reduces the coefficient of friction to 0.060 ± 0.001, which is 26.83% lower than that of the composite without MXene, while keeping the wear rate at a low level of 10−6 mm3 N−1·m−1. According to the molecular dynamics simulation, the excellent anti-friction and anti-wear performance can be attributed to the controlled release of PTFE by Ti3C2Tx MXene, which originates from their strong interfacial bonding.
KW - MXene
KW - PEEK-PTFE blends
KW - Ultra-low friction and wear
KW - controlled releasing
KW - self-lubricating
UR - https://www.scopus.com/pages/publications/105016667421
U2 - 10.1002/adfm.202520137
DO - 10.1002/adfm.202520137
M3 - 文章
AN - SCOPUS:105016667421
SN - 1616-301X
VL - 36
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 14
M1 - e20137
ER -