Stable hydrogenated graphene edge types: Normal and reconstructed Klein edges
arXiv:1306.3384 · doi:10.1103/PhysRevB.88.094106
Abstract
Hydrogenated graphene edges are assumed to be either armchair, zigzag or a combination of the two. We show that the zigzag is not the most stable fully hydrogenated structure along the <2-1-10> direction. Instead hydrogenated Klein and reconstructed Klein based edges are found to be energetically more favourable, with stabilities approaching that of armchair edges. These new structures "unify" graphene edge topology, the most stable flat hydrogenated graphene edges always consisting of pairwise bonded C2H4 edge groups, irrespective the edge orientation. When edge rippling is included, CH3 edge groups are most stable. These new fundamental hydrogen terminated edges have important implications for graphene edge imaging and spectroscopy, as well as mechanisms for graphene growth, nanotube cutting, and nanoribbon formation and behaviour.
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References in corpus (13)
- Half-Metallic Graphene Nanoribbons
- Emergence of magnetism in graphene materials and nanostructures
- Tailoring the atomic structure of graphene nanoribbons by STM lithography
- Self-passivating edge reconstructions of graphene
- Structure, Stability, Edge States and Aromaticity of Graphene Ribbons
- Edge-functionalized and substitutional doped graphene nanoribbons: electronic and spin properties
- First-Principles Thermodynamics of Graphene Growth on Cu Surface
- Stability of edge states and edge magnetism in graphene nanoribbons
- Experimentally Engineering the Edge Termination of Graphene Nanoribbons
- A comparative study of density functional and density functional tight binding calculations of defects in graphene
- Low energy graphene edge termination via small diameter nanotube formation
- Ripple edge engineering of graphene nanoribbons
- Optical properties and charge-transfer excitations in edge-functionalized all-graphene nanojunctions
Cited by in corpus (5)
- Current developments in silicene and germanene
- Breaking of symmetry in graphene growth on metal substrates
- Engineering spin exchange in non-bipartite graphene zigzag edges
- On the identification of pristine and defected graphene nanoribbons by phonon signatures in the electron transport characteristics
- Transformation of a graphene nanoribbon into a hybrid 1D nanoobject with alternating double chains and polycyclic regions