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◆ Journal of Materials Research and Technology2025-12-19· Materials science

3D printed Ti3C2Tx MXene/carbon fibers reinforced SiOC periodical lattice structures towards superior lubrication performance

Yu‐Jun Zhao, Xinyi Zhang, Mengyi Hou, Peng Chang, Jing Guo, Xiwen Zhang, Hui Mei, Laifei Cheng

原始摘要(英文原文)· Original abstract
Minimizing friction and wear of advanced ceramic materials has attracted considerable attention in the high-end equipment manufacturing applications. Despite significant progress in this field, realizing stable high lubrication under macroscopic dry sliding conditions remains a challenge. Herein, by utilizing 3D printing technology, the ceramic based self-lubricating composites with low friction, high lubrication stability and ideal mechanical strength were developed through introducing microscale assembled Ti 3 C 2 T x MXene/carbon fibers (MXene/C f ) network into macroscale periodical lattice silicon oxycarbide (SiOC) structures. The octet-truss MXene/C f /SiOC periodical lattice structure (MCSO) exhibits the largest compressive strength of 56.11 MPa, the highest Young's modulus of 40.87 GPa and a maximum energy absorption of 44.78 kJ⸱m -3 . More impressively, MCSO achieves a minimum average friction coefficient of about 0.14 under a normal load of 1 N and a frequency of 1 Hz, while remains at a low and stable value of approximately 0.26 under 5 N, 5 Hz and 18000 sliding cycles. The high mechanical support and wear debris capture provided by the octet-truss periodical lattice structure, as well as the structure damage suppression and continuous lubrication effect driven by internal MXene/C f , contribute to such excellent lubrication durability. The demonstrated strategy offers an attractive pathway for the design of high-performance lubrication devices operating under harsh conditions.
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3D printed Ti3C2Tx MXene/carbon fibers reinforced SiOC periodical lattice structures towards superior lubrication performance — 科研速览 Science Skim