Opening a sizable band gap without degrading its high carrier mobility is as vital for silicene as for graphene to its application as a high-performance field effect transistor (FET). Our density functional theory calculations predict that a band gap is opened in silicene by single-side adsorption of alkali atom as a result of sublattice or bond symmetry breaking. The band gap size is controllable by changing the adsorption coverage, with an impressive maximum band gap up to 0.50 eV. The ab initio quantum transport simulation of a bottom-gated FET based on a sodium-covered silicene reveals a transport gap, which is consistent with the band gap, and the resulting on/off current ratio is up to 10(8). Therefore, a way is paved for silicene as ...
The quantum spin Hall (QSH) effect predicted in silicene has raised exciting prospects of new device...
The electronic properties of 3d transition metal (TM)-decorated silicene were investigated by using ...
Silicene, a two-dimensional (2D) silicon counterpart of graphene with attractive electronic properti...
By using first-principles calculations, we predict that a sizable band gap can be opened at the Dira...
By using ab initio calculations, we predict that a vertical electric field is able to open a band ga...
By using ab initio calculations, we predict that a vertical electric field is able to open a band ga...
Similar to graphene, zero band gap limits the application of silicene in nanoelectronics despite of ...
Unlike graphene which requires redesigned fabrication technique, silicene is predicted to be compati...
Unlike graphene which requires redesigned fabrication technique, silicene is predicted to be compati...
Unlike graphene which requires redesigned fabrication technique, silicene is predicted to be compati...
This study applies density functional theory (DFT) on examination of silicene, which is graphene-lik...
In the past decade a new exciting class of materials has been developed, which is not three-dimensio...
In the past decade a new exciting class of materials has been developed, which is not three-dimensio...
Free standing silicene is a two-dimensional silicon monolayer with a buckled honeycomb lattice and a...
We report first-principles results on the electronic structure of silicene. For planar and simply bu...
The quantum spin Hall (QSH) effect predicted in silicene has raised exciting prospects of new device...
The electronic properties of 3d transition metal (TM)-decorated silicene were investigated by using ...
Silicene, a two-dimensional (2D) silicon counterpart of graphene with attractive electronic properti...
By using first-principles calculations, we predict that a sizable band gap can be opened at the Dira...
By using ab initio calculations, we predict that a vertical electric field is able to open a band ga...
By using ab initio calculations, we predict that a vertical electric field is able to open a band ga...
Similar to graphene, zero band gap limits the application of silicene in nanoelectronics despite of ...
Unlike graphene which requires redesigned fabrication technique, silicene is predicted to be compati...
Unlike graphene which requires redesigned fabrication technique, silicene is predicted to be compati...
Unlike graphene which requires redesigned fabrication technique, silicene is predicted to be compati...
This study applies density functional theory (DFT) on examination of silicene, which is graphene-lik...
In the past decade a new exciting class of materials has been developed, which is not three-dimensio...
In the past decade a new exciting class of materials has been developed, which is not three-dimensio...
Free standing silicene is a two-dimensional silicon monolayer with a buckled honeycomb lattice and a...
We report first-principles results on the electronic structure of silicene. For planar and simply bu...
The quantum spin Hall (QSH) effect predicted in silicene has raised exciting prospects of new device...
The electronic properties of 3d transition metal (TM)-decorated silicene were investigated by using ...
Silicene, a two-dimensional (2D) silicon counterpart of graphene with attractive electronic properti...