Silicene takes precedence over graphene due to its buckling type structure and strong spin orbit coupling. Motivated by these properties, we study the silicene bilayer in the presence of applied perpendicular electric field and intrinsic spin orbit coupling to probe as quantum spin/valley Hall effect. Using analytical approach, we calculate the spin Chern-number of bilayer silicene and then compare it with monolayer silicene. We reveal that bilayer silicene hosts double spin Chern-number as compared to single layer silicene and therefore accordingly has twice as many edge states in contrast to single layer silicene. In addition, we investigate the combined effect of intrinsic spin orbit coupling and the external electric field, we find that...
We show that gated bilayer graphene hosts a strong topological insulator (TI) phase in the presence ...
In an effort to surmount the issues that arise when attempting to scale transistors down to the low ...
Silicene is a monolayer of silicon atoms forming a two-dimensional honeycomb lattice. We i...
We investigate the transport properties in a zigzag silicene nanoribbon in the presence of an extern...
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...
Graphene is nowadays a famous material due to its exquisite properties and potential applications. H...
It has been widely accepted that silicene is a topological insulator, and its gap closes first and t...
We investigate topological phases of bilayer graphene subject to antiferromagnetic exchange fields, ...
The low-buckled material silicene undergoes abundant topological phase transitions under external fi...
Silicene is a graphene-like material with relatively strong spin-orbit coupling exhibiting gapless t...
Quantum Spin Hall (QSH) has potential applications in low energy consuming spintronic devices and ha...
Quantum Spin Hall (QSH) has potential applications in low energy consuming spintronic devices and ha...
We conduct a comprehensive investigation of the effect of an applied electric field on the optical a...
We conduct a comprehensive investigation of the effect of an applied electric field on the optical a...
We show that gated bilayer graphene hosts a strong topological insulator (TI) phase in the presence ...
In an effort to surmount the issues that arise when attempting to scale transistors down to the low ...
Silicene is a monolayer of silicon atoms forming a two-dimensional honeycomb lattice. We i...
We investigate the transport properties in a zigzag silicene nanoribbon in the presence of an extern...
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...
Graphene is nowadays a famous material due to its exquisite properties and potential applications. H...
It has been widely accepted that silicene is a topological insulator, and its gap closes first and t...
We investigate topological phases of bilayer graphene subject to antiferromagnetic exchange fields, ...
The low-buckled material silicene undergoes abundant topological phase transitions under external fi...
Silicene is a graphene-like material with relatively strong spin-orbit coupling exhibiting gapless t...
Quantum Spin Hall (QSH) has potential applications in low energy consuming spintronic devices and ha...
Quantum Spin Hall (QSH) has potential applications in low energy consuming spintronic devices and ha...
We conduct a comprehensive investigation of the effect of an applied electric field on the optical a...
We conduct a comprehensive investigation of the effect of an applied electric field on the optical a...
We show that gated bilayer graphene hosts a strong topological insulator (TI) phase in the presence ...
In an effort to surmount the issues that arise when attempting to scale transistors down to the low ...
Silicene is a monolayer of silicon atoms forming a two-dimensional honeycomb lattice. We i...