Silicene is a two-dimensional honeycomb lattice made of silicon atoms, which is considered to be a new Dirac fermion system. Based on first-principles calculations, we examine the possibility of the formation of solitonlike topological domain walls (DWs) in silicene. We show that the DWs between regions of distinct ground states of the buckled geometry should bind electrons when a uniform electric field is applied in the perpendicular direction to the sheet. The topological origin of the electron confinement is demonstrated based on numerical calculations of the valley-specific Hall conductivities, and possible experimental signatures of the quantum valley Hall effects are discussed using simulated scanning tunneling microscopy images. Our ...
In an effort to surmount the issues that arise when attempting to scale transistors down to the low ...
The quantum spin Hall (QSH) effect predicted in silicene has raised exciting prospects of new device...
The quantum spin Hall (QSH) effect predicted in silicene has raised exciting prospects of new device...
Silicene consists of a monolayer of silicon atoms in a buckled honeycomb structure. It was recently ...
Abstract. Silicene consists of a monolayer of silicon atoms in a buckled honeycomb structure. It was...
Silicene is a monolayer of silicon atoms forming a two-dimensional honeycomb lattice. We i...
Silicene takes precedence over graphene due to its buckling type structure and strong spin orbit cou...
We investigate the transport properties in a zigzag silicene nanoribbon in the presence of an extern...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Graphene is nowadays a famous material due to its exquisite properties and potential applications. H...
We report calculations of the electronic structure of silicene and the stability of its weakly buckl...
In an effort to surmount the issues that arise when attempting to scale transistors down to the low ...
The quantum spin Hall (QSH) effect predicted in silicene has raised exciting prospects of new device...
The quantum spin Hall (QSH) effect predicted in silicene has raised exciting prospects of new device...
Silicene consists of a monolayer of silicon atoms in a buckled honeycomb structure. It was recently ...
Abstract. Silicene consists of a monolayer of silicon atoms in a buckled honeycomb structure. It was...
Silicene is a monolayer of silicon atoms forming a two-dimensional honeycomb lattice. We i...
Silicene takes precedence over graphene due to its buckling type structure and strong spin orbit cou...
We investigate the transport properties in a zigzag silicene nanoribbon in the presence of an extern...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Layered materials with buckled structure offer a promising route to explore distinct phases of quant...
Graphene is nowadays a famous material due to its exquisite properties and potential applications. H...
We report calculations of the electronic structure of silicene and the stability of its weakly buckl...
In an effort to surmount the issues that arise when attempting to scale transistors down to the low ...
The quantum spin Hall (QSH) effect predicted in silicene has raised exciting prospects of new device...
The quantum spin Hall (QSH) effect predicted in silicene has raised exciting prospects of new device...