We present an analytical tight-binding theory of the optical properties of graphene nanoribbons with zigzag edges. Applying the transfer matrix technique to the nearest-neighbor tight-binding Hamiltonian, we derive analytical expressions for electron wave functions and optical transition matrix elements for incident light polarized along the structure axis. It follows from the obtained results that optical selection rules result from the wave function parity factor (−1)J , where J is the band number. These selection rules are that J is odd for transitions between valence and conduction subbands and that J is even for transitions between only valence (conduction) subbands. Although these selection rules are different from those in armchair c...
In this thesis I employ effective Hamiltonian models to study the electronic structure of materials....
The general objective of the research project is to study the electronic properties of graphene nan...
We use the robust nearest-neighbor tight-binding approximation to study the same footing interband d...
We present an analytical tight-binding theory of the optical properties of graphene nanoribbons with...
PublishedThis is the final version of the article. Available from American Physical Society via the ...
We present calculations of the optical absorption and electroabsorption spectra of graphene nanoribb...
Development of on-chip integrated carbon-based optoelectronic nanocircuits requires fast and non-inv...
Development of on-chip integrated carbon-based optoelectronic nanocircuits requires fast and non-inv...
We explore the implementation of specific optical properties of armchair graphene nanoribbons (AGNRs...
In this chapter, interband dipole transitions are calculated in quasi-metallic single-walled carbon ...
We present some computational simulations of graphene-based nanoribbons with a number of half-twists...
In this thesis I employ effective Hamiltonian models to study the electronic structure of materials....
We study the electronic screening of the long-range Coulomb interaction in graphene nanoribbons (GNR...
We use the robust nearest-neighbor tight-binding approximation to study the same footing interband d...
We use the robust nearest-neighbor tight-binding approximation to study the same footing interband d...
In this thesis I employ effective Hamiltonian models to study the electronic structure of materials....
The general objective of the research project is to study the electronic properties of graphene nan...
We use the robust nearest-neighbor tight-binding approximation to study the same footing interband d...
We present an analytical tight-binding theory of the optical properties of graphene nanoribbons with...
PublishedThis is the final version of the article. Available from American Physical Society via the ...
We present calculations of the optical absorption and electroabsorption spectra of graphene nanoribb...
Development of on-chip integrated carbon-based optoelectronic nanocircuits requires fast and non-inv...
Development of on-chip integrated carbon-based optoelectronic nanocircuits requires fast and non-inv...
We explore the implementation of specific optical properties of armchair graphene nanoribbons (AGNRs...
In this chapter, interband dipole transitions are calculated in quasi-metallic single-walled carbon ...
We present some computational simulations of graphene-based nanoribbons with a number of half-twists...
In this thesis I employ effective Hamiltonian models to study the electronic structure of materials....
We study the electronic screening of the long-range Coulomb interaction in graphene nanoribbons (GNR...
We use the robust nearest-neighbor tight-binding approximation to study the same footing interband d...
We use the robust nearest-neighbor tight-binding approximation to study the same footing interband d...
In this thesis I employ effective Hamiltonian models to study the electronic structure of materials....
The general objective of the research project is to study the electronic properties of graphene nan...
We use the robust nearest-neighbor tight-binding approximation to study the same footing interband d...