Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8028685 | Surface and Coatings Technology | 2013 | 4 Pages |
Abstract
Dangling bond induced cross-linking in an interlayer graphene during nanoscratch is simulated by molecular dynamics method. The normal stress over 74Â GPa leads to a broken hexagonal ring of the intralayer graphene, producing unstable dangling bonds which easily make up sp2 or sp3 between neighbor layers. The cross-linking density increases with increasing scratching depth, causing higher scratch hardness. The maximum scratch hardness is 90Â GPa. The cross-linking is reversible after scratch when the normal stress is less than 90Â GPa, beyond which the atoms from different graphene layers will be mixed together forming amorphous structure, making the scratch hardness decrease sharply. These results provide insights into the structural and mechanical properties of graphene based materials.
Related Topics
Physical Sciences and Engineering
Materials Science
Nanotechnology
Authors
Qi Zhang, Dongfeng Diao, Lei Yang,