Related Experiment Video
Updated: Jan 23, 2026

Synthesis of Graphene Nanofluids with Controllable Flake Size Distributions
Published on: July 17, 2019
Grain size and hydroxyl-coverage dependent tribology of polycrystalline graphene
Yong Chen1, Shiwei Wang1, Lu Xie1
1School of Mechanical Engineering, University of Science and Technology Beijing, Beijing 100083, People's Republic of China.
Abstract:
Functional groups and grain boundaries of polycrystalline graphenes play important roles in their tribological behaviors but the mechanism is still elusive. Here, we have investigated the influences of hydroxyl groups, coverage, and grain size on the surface corrugation, friction, and motion behavior of polycrystalline graphene using molecular dynamics simulations. The results show that the corrugation of polycrystalline graphene increases with respect to an increase in grain size. The introduction of hydroxyl groups suppresses the corrugation. The friction between carbon nanotube (CNT) and polycrystalline graphene increases the formation of hydrogen bonds when the interfaces are grafted with hydroxyl groups. The highest amount of friction appears when the ratio of hydroxyl groups on CNT, and polycrystalline graphene, is about 15%-5%. This is due to the balance between the interface space and the formed hydrogen bonds. Furthermore, polycrystalline slides following the movement of CNT owing to high friction. In addition, the energy dissipation as a result of the vibration of the hydroxyl groups plays a more important role as the ratio of hydroxyl groups increases.
Related Concept Videos
Cell Size
Surface Area
Cells can take in nutrients and water via diffusion through the plasma membrane itself or through specific channels in the membrane. The area of the membrane surrounding...
Frequency-dependent Selection
Drug Dependence
Contact-dependent Signaling
Gap Junctions
In animal cells, gap junctions are formed...
Brick Sizes
Modular bricks are the most common type and are sized to include the mortar joint, which is essential for...
Trends in Lattice Energy: Ion Size and Charge

