2D Nanomaterial-Reinforced Copper Matrix Composites for Tribological Applications
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Författare
Typ
Examensarbete för masterexamen
Master's Thesis
Master's Thesis
Program
Modellbyggare
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Sammanfattning
Copper is widely used in electrical components, including switching devices, due to
its excellent electrical conductivity. However, copper-based switching components
are susceptible to friction and wear during repeated sliding contact. While oil- and
grease-based lubricants can reduce friction and wear, they require maintenance, and
their performance depends on operating conditions. This creates a need for lowfriction,
wear-resistant materials to enable efficient, reliable switching performance.
This thesis investigates whether MXene reinforcement can improve the tribological
performance of copper matrix composites for electrical switching applications.
MXene-Cu composites with MXene loadings ranging from 0.5 wt.% to 2.5 wt.%
were fabricated and evaluated using linear reciprocating ball-on-flat measurements.
The composites were characterized before and after sintering, and after tribological
testing, using optical microscopy, SEM, and EDS. The MXene-Cu composites were
also compared with additional material systems, namely Graphene-Cu and MXene-
Graphene-Cu hybrid composites.
During the tribomechanical evaluation, the pure Cu reference was prematurely interrupted
due to excessive friction. Although the measurement of one MXene-Cu
composite was interrupted due to excessive friction, all other MXene-Cu composites
finished the measurement. This indicates that MXene reinforcement improved
sliding durability compared with pure Cu. However, the sintered MXene-Cu composites
still exhibited relatively high coefficients of friction, ranging from 0.62 to
0.949, and no sustained low-friction behavior comparable to the greased reference
was achieved. The 2 wt.% MXene-Cu composite showed the lowest mean coefficient
of friction (CoF) among the sintered MXene-Cu samples, but the initial friction
reduction was not sustained for the entire measurement. SEM and EDS analysis
suggested surface smearing and compacted wear layers, but did not confirm the formation
of a continuous MXene-derived lubricating tribofilm.
Overall, MXene reinforcement showed potential for improving sliding durability, but
further optimization of composition, processing, and surface condition is required
before practical application in electrical switching devices can be considered.
