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By using aligned multi-walled carbon nanotube (MWCNT) reinforced epoxy composites possessing a negative coefficient of thermal expansion (CTE) as well as high Young's modulus and aluminum foils, novel electrothermal bimorph actuators are fabricated.
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The composites possess a relatively uniform mesoporous layer of CNFs of relatively small diameter.
The dry sliding wear tests revealed that the TiC/Ti5Si3 composites possessed a considerably low friction coefficient of 0.2 and a reduced wear rate of 1.42 × 10− 4 mm3/Nm.
The meso-MoS2 1-x Se2x/rGO comeso-MoS2 1-x Se2x/rGO-dimeso-MoS2 1-x Se2x/rGO strucomposites well-defined mesopossessy and two-dimensional2D nanoparticlayered perpendicularly grown on graphene structure
These composites possess a large processing temperature window (>30 °C) and a high volume fraction of highly oriented PP reinforcement phase (>90%).
The structural and morphological characterizations showed that composites possessed a special 3D structure, which consisted of well-dispersive porous carbon particles growing chemically on the graphene sheets.
The anisotropically shaped titanate nanobelts in the obtained composites possessed a higher charge carrier mobility and provided the pathway for quick transport of charge carriers throughout the longitudinal direction to different reaction sites for subsequent reactions.
We also showed that the elaborated Au-loaded composites possess a strong catalytic activity in O2 reduction under a small negative bias (−0.25 V vs. Ag/AgCl) in dark.
When employing as the electrode materials, the graphene/PVDF composites possess a high energy density of 7.77 mWh cm−3 and power density of 2.86 W cm−3 respectively, along with an outstanding long-term stability.
Consequently, the graphitized CNT/POM composites possess a high electrical conductivity and a low percolation threshold of 0.5 wt.% CNT loading, which is associated with the weak CNT polymer interaction, low contact resistance between CNTs, good connectivity of CNT networks, and high crystallinity of POM in the composites.
The synthesized LFP/N-CNWs composites possess a porous structure with an amazing surface area of 129 m2 g−1, considerably enhanced electrical conductivities of 7.58 × 10−2 S cm−1 and Li+ diffusion coefficient of 8.82 × 10−14 cm2 s−1, thereby delivering excellent discharge capacities of 161.5 and 93.6 mat·g−1 at 0.1C and 20C, respectively.
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