English

Strain-tunable topological quantum phase transition in buckled honeycomb lattices

Mesoscale and Nanoscale Physics 2015-05-20 v1

Abstract

Low-buckled silicene is a prototypical quantum spin Hall insulator with the topological quantum phase transition controlled by an out-of-plane electric field. We show that this field-induced electronic transition can be further tuned by an in-plane hydrostatic biaxial strain ε\varepsilon, owing to the curvature-dependent spin-orbit coupling (SOC): There is a Z2Z_2 = 1 topological insulator phase for biaxial strain ε|\varepsilon| smaller than 0.07, and the band gap can be tuned from 0.7 meV for ε=+0.07\varepsilon = +0.07 up to a fourfold 3.0 meV for ε=0.07\varepsilon = -0.07. First-principles calculations also show that the critical field strength EcE_c can be tuned by more than 113\%, with the absolute values nearly 10 times stronger than the theoretical predictions based on a tight-binding model. The buckling structure of the honeycomb lattice thus enhances the tunability of both the quantum phase transition and the SOC-induced band gap, which are crucial for the design of topological field-effect transistors based on two-dimensional materials.

Keywords

Cite

@article{arxiv.1503.05375,
  title  = {Strain-tunable topological quantum phase transition in buckled honeycomb lattices},
  author = {Jia-An Yan and Mack A. Dela Cruz and Salvador Barraza-Lopez and Li Yang},
  journal= {arXiv preprint arXiv:1503.05375},
  year   = {2015}
}

Comments

5 pages, 4 figures