An analytical study of electronic properties of ABC-stacking multilayer graphene
arXiv:1704.06875
Abstract
We present an analytical model to study the electronic properties, including full band structure, low energy dispersions around the Dirac point and density of states of the ABC-stacking -layer graphene (ABCNLG). An ABCNLG can be simulated by a linear atomic chain with atoms. With only nearest-neighbor inter- and intra-layer hopping integrals taken into account, the Hamiltonian representation is a complex tridiagonal matrix . Through a unitary transformation, we can reduce the Hamiltonian matrix into two real tridiagonal matrices and , i. e., . What's more, the two matrices satisfy the relation . As a result, energy spectrum associated with and have the relation . Such a characteristic is reflected on the energy dispersions and density of states. Our model can be applied to explore the basic properties of linear chain model and the eigenvalue problem of the tridiagonal matrices.
16 pages, 5 figures
References in corpus (7)
- Band Structure of ABC-Stacked Graphene Trilayers
- Colloquium: Graphene spectroscopy
- Magneto-optical properties of multilayer graphenes
- Dynamical conductivity of AA-stacked bilayer graphene
- Stacking-dependent electronic structure of trilayer graphene resolved by nanospot angle-resolved photoemission spectroscopy
- Experimental approval of the extended flat bands and gapped subbands in rhombohedral multilayer graphene
- Electrically tunable plasma excitations in AA-stacking multilayer graphene