A tight-binding investigation of biaxial strain induced topological phase transition in GeCH
arXiv:1707.04213 · doi:10.1103/PhysRevB.96.085441
Abstract
We propose a tight-binding (TB) model, that includes spin-orbit coupling (SOC), to describe the electronic properties of methyl-substituted germanane (GeCH). This model gives an electronic spectrum in agreement with first principle results close to the Fermi level. Using the formalism, we show that a topological phase transition from a normal insulator (NI) to a quantum spin Hall (QSH) phase occurs at 11.6\% biaxial tensile strain. The sensitivity of the electronic properties of this system on strain, in particular its transition to the topological insulating phase, makes it very attractive for applications in strain sensors and other microelectronic applications.
8 pages, 10 figures
References in corpus (6)
- The electronic properties of graphene
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Control of graphene's properties by reversible hydrogenation
- Spin-orbit coupling in curved graphene, fullerenes, nanotubes, and nanotube caps
- Spin-orbit gap of graphene: First-principles calculations
- Time Reversal Polarization and a Z_2 Adiabatic Spin Pump