Topological phase transition and electrically tunable diamagnetism in silicene
Silicene is a monolayer of silicon atoms forming a honeycomb lattice. The lattice is actually made of two sublattices with a tiny separation. Silicene is a topological insulator, which is characterized by a full insulating gap in the bulk and helical gapless edges. It undergoes a phase transition from a topological insulator to a band insulator by applying external electric field. Analyzing the spin Chern number based on the effective Dirac theory, we find the origin to be a pseudospin meron in the momentum space. The peudospin degree of freedom arises from the two-sublattice structure. Our analysis makes clear the mechanism how a phase transition occurs from a topological insulator to a band insulator under increasing electric field. We propose a method to determine the critical electric field with the aid of diamagnetism of silicene. Diamagnetism is tunable by the external electric field, and exhibits a singular behaviour at the critical electric field. Our result is important also from the viewpoint of cross correlation between electric field and magnetism. Furthermore, nano-electromechanic devices transforming electric force to mechanical force may be feasible. Our finding will be important for future electro-magnetic correlated devices. Copyright EDP Sciences, SIF, Springer-Verlag Berlin Heidelberg 2012
Year of publication: |
2012
|
---|---|
Authors: | Ezawa, M. |
Published in: |
The European Physical Journal B - Condensed Matter and Complex Systems. - Springer. - Vol. 85.2012, 11, p. 1-5
|
Publisher: |
Springer |
Subject: | Mesoscopic and Nanoscale Systems |
Saved in:
Online Resource
Saved in favorites
Similar items by subject
-
Bahadur, Amar, (2015)
-
Wang, Pei, (2013)
-
Macroscopic quantum beats in a molecular magnet loosely fastened to the matrix
Kim, Gwang-Hee, (2013)
- More ...
Similar items by person
-
Spin filter, spin amplifier and spin diode in graphene nanodisk
Ezawa, M., (2009)
- More ...