TY - JOUR
T1 - Recent advances in state-of-the-art 2D MXenes
T2 - Synthesis, mechanical and tribological properties
AU - Chen, Zhengyan
AU - Lan, Zhou
AU - Huang, Wei
AU - Yan, Hongxia
AU - Jin, Yanling
AU - Yang, Guofang
AU - Guo, Zhengzheng
AU - Ren, Fang
AU - Sun, Zhenfeng
AU - Ren, Penggang
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2026/2/1
Y1 - 2026/2/1
N2 - Two-dimensional transition metal carbides, nitrides, and carbonitrides, collectively known as MXenes, have attracted significant attention in various fields, such as electromagnetic shielding, sensor technology, and energy storage, owing to their unique layered structure, excellent electrical conductivity, and tunable surface chemistry. Although several recent reviews have covered the mechanical and tribological properties of MXenes, the relationship among their structural characteristics, mechanical performance, and tribological behavior requires further systematic exploration. This review aims to comprehensively summarize the methodologies for MXene synthesis, elucidate their mechanical properties, and explore the mechanisms underlying their tribological behaviors. By integrating theoretical calculations with experimental investigations, we elucidate the nanomechanical characteristics of MXenes and clarify the superlubricious behavior resulting from their low shear strength. Moreover, we explore their applications as lubricant additives, solid lubricant coatings, and reinforcing phases in composites. To address the dispersion challenges of MXenes in base oils, we propose innovative strategies, including covalent functionalization and the development of hybrid materials, which can significantly improve interfacial compatibility and wear resistance. Additionally, this review deliberates on the latest progress in the applications of MXenes in triboelectric nanogenerators, biotribology, and nanotribology, highlighting their potential as self-powered sensors for flexible wearable devices and as lubricating agents for artificial joints. Finally, we propose some challenges and future perspectives relevant to the continuous development of MXenes in the rapidly growing field of tribology.
AB - Two-dimensional transition metal carbides, nitrides, and carbonitrides, collectively known as MXenes, have attracted significant attention in various fields, such as electromagnetic shielding, sensor technology, and energy storage, owing to their unique layered structure, excellent electrical conductivity, and tunable surface chemistry. Although several recent reviews have covered the mechanical and tribological properties of MXenes, the relationship among their structural characteristics, mechanical performance, and tribological behavior requires further systematic exploration. This review aims to comprehensively summarize the methodologies for MXene synthesis, elucidate their mechanical properties, and explore the mechanisms underlying their tribological behaviors. By integrating theoretical calculations with experimental investigations, we elucidate the nanomechanical characteristics of MXenes and clarify the superlubricious behavior resulting from their low shear strength. Moreover, we explore their applications as lubricant additives, solid lubricant coatings, and reinforcing phases in composites. To address the dispersion challenges of MXenes in base oils, we propose innovative strategies, including covalent functionalization and the development of hybrid materials, which can significantly improve interfacial compatibility and wear resistance. Additionally, this review deliberates on the latest progress in the applications of MXenes in triboelectric nanogenerators, biotribology, and nanotribology, highlighting their potential as self-powered sensors for flexible wearable devices and as lubricating agents for artificial joints. Finally, we propose some challenges and future perspectives relevant to the continuous development of MXenes in the rapidly growing field of tribology.
KW - Lubrication mechanism
KW - MXenes
KW - Mechanical performance
KW - Synthesis
KW - Tribology
UR - https://www.scopus.com/pages/publications/105015411009
U2 - 10.1016/j.ccr.2025.217175
DO - 10.1016/j.ccr.2025.217175
M3 - 文献综述
AN - SCOPUS:105015411009
SN - 0010-8545
VL - 548
JO - Coordination Chemistry Reviews
JF - Coordination Chemistry Reviews
M1 - 217175
ER -