In this paper we systemically study the optical conductivity and density of states of disordered graphene beyond the Dirac cone approximation. The optical conductivity of graphene is computed by using the Kubo formula, within the framework of a full p-band tight-binding model. Different types of noncorrelated and correlated disorder are considered, such as random or Gaussian potentials, random or Gaussian nearest-neighbor hopping parameters, randomly distributed vacancies or their clusters, and randomly adsorbed hydrogen atoms or their clusters. For a large enough concentration of resonant impurities, an additional peak in the optical conductivity is found, associated with transitions between the midgap states and the Van Hove singularities...
Using the recursive Green\u27s function method, we study the problem of electron transport in a diso...
Using the recursive Green\u27s function method, we study the problem of electron transport in a diso...
The single-band current-dipole Kubo formula for the dynamical conductivity of heavily doped graphene...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
Contains fulltext : 92158.pdf (publisher's version ) (Open Access
We present a detailed numerical study of the electronic transport properties of bilayer and trilayer...
We present a detailed numerical study of the electronic transport properties of bilayer and trilayer...
In this paper we study the optical conductivity and density of states (DOS) of doped gapped graphene...
We present a systematic study of the electronic, transport, and optical properties of disordered gra...
We study the infrared conductivity of graphene at finite chemical potential and temperature taking i...
We study the optical conductivity of a doped graphene when a sublattice symmetry breaking is occurre...
Using the recursive Green\u27s function method, we study the problem of electron transport in a diso...
Using the recursive Green\u27s function method, we study the problem of electron transport in a diso...
The single-band current-dipole Kubo formula for the dynamical conductivity of heavily doped graphene...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
In this paper we systemically study the optical conductivity and density of states of disordered gra...
Contains fulltext : 92158.pdf (publisher's version ) (Open Access
We present a detailed numerical study of the electronic transport properties of bilayer and trilayer...
We present a detailed numerical study of the electronic transport properties of bilayer and trilayer...
In this paper we study the optical conductivity and density of states (DOS) of doped gapped graphene...
We present a systematic study of the electronic, transport, and optical properties of disordered gra...
We study the infrared conductivity of graphene at finite chemical potential and temperature taking i...
We study the optical conductivity of a doped graphene when a sublattice symmetry breaking is occurre...
Using the recursive Green\u27s function method, we study the problem of electron transport in a diso...
Using the recursive Green\u27s function method, we study the problem of electron transport in a diso...
The single-band current-dipole Kubo formula for the dynamical conductivity of heavily doped graphene...