Orthorhombic arsenene was recently predicted as an indirect bandgap semiconductor. Here, we demonstrate that nanostructuring arsenene into nanoribbons successfully transform the bandgap to be direct. It is found that direct bandgaps hold for narrow armchair but wide zigzag nanoribbons, which is dominated by the competition between the in-plane and out-of-plane bondings. Moreover, straining the nanoribbons also induces a direct bandgap and simultaneously modulates effectively the transport property. The gap energy is largely enhanced by applying tensile strains to the armchair structures. In the zigzag ones, a tensile strain makes the effective mass of holes much higher while a compressive strain cause it much lower than that of electrons. O...
Among organic electronic materials, graphene nanoribbons (GNRs) offer extraordinary versatility as n...
We report the energy level alignment evolution of valence and conduction bands of armchair-oriented ...
Among organic electronic materials, graphene nanoribbons (GNRs) offer extraordinary versatility as n...
Arsenic has been predicted to present significantly more diverse 2D phases than other elementalcompo...
Producción CientíficaArsenic has been predicted to present significantly more diverse 2D phases than...
We theoretically investigate the electronic structures for armchair-edge graphene nanoribbons (AGNRs...
Arsenene and antimonene, i.e. two-dimensional (2D) As and Sb monolayers, are the recently proposed c...
We report a first-principles study on the electronic structures of deformed graphene nanoribbons (GN...
The electronic band structure and carrier density of strained armchair graphene nanoribbons (AGNRs) ...
Semiconducting graphene nanoribbons (GNRs) are envisioned to play an important role in future electr...
The band structures of zigzag graphene nanoribbons under uniaxial strain are investigated within the...
Passivated phosphorene nanoribbons, armchair (a-PNR), diagonal (d-PNR), and zigzag (z-PNR), were inv...
Deterministic band gap in quasi-one-dimensional nanoribbons is prerequisite for their integrated fun...
The density functional theory (DFT) is carried out to predict the strain effect on the electronic st...
Deterministic band gap in quasi-one-dimensional nanoribbons is prerequisite for their integrated fun...
Among organic electronic materials, graphene nanoribbons (GNRs) offer extraordinary versatility as n...
We report the energy level alignment evolution of valence and conduction bands of armchair-oriented ...
Among organic electronic materials, graphene nanoribbons (GNRs) offer extraordinary versatility as n...
Arsenic has been predicted to present significantly more diverse 2D phases than other elementalcompo...
Producción CientíficaArsenic has been predicted to present significantly more diverse 2D phases than...
We theoretically investigate the electronic structures for armchair-edge graphene nanoribbons (AGNRs...
Arsenene and antimonene, i.e. two-dimensional (2D) As and Sb monolayers, are the recently proposed c...
We report a first-principles study on the electronic structures of deformed graphene nanoribbons (GN...
The electronic band structure and carrier density of strained armchair graphene nanoribbons (AGNRs) ...
Semiconducting graphene nanoribbons (GNRs) are envisioned to play an important role in future electr...
The band structures of zigzag graphene nanoribbons under uniaxial strain are investigated within the...
Passivated phosphorene nanoribbons, armchair (a-PNR), diagonal (d-PNR), and zigzag (z-PNR), were inv...
Deterministic band gap in quasi-one-dimensional nanoribbons is prerequisite for their integrated fun...
The density functional theory (DFT) is carried out to predict the strain effect on the electronic st...
Deterministic band gap in quasi-one-dimensional nanoribbons is prerequisite for their integrated fun...
Among organic electronic materials, graphene nanoribbons (GNRs) offer extraordinary versatility as n...
We report the energy level alignment evolution of valence and conduction bands of armchair-oriented ...
Among organic electronic materials, graphene nanoribbons (GNRs) offer extraordinary versatility as n...