English

Photo-Induced Topological Phase Transition and a Single Dirac-Cone State in Silicene

Mesoscale and Nanoscale Physics 2013-01-15 v2 Materials Science

Abstract

Silicene (a monolayer of silicon atoms) is a quantum spin Hall insulator (QSHI), which undergoes a topological phase transition to a band insulator under external electric field EzE_{z}. We investigate a photo-induced topological phase transition by irradiating circular polarized light at fixed EzE_{z}. The band structure and also the topological property are modified by photon dressing. By increasing the intensity of light at Ez=0E_{z}=0 , a photo-induced quantum Hall insulator (P-QHI) is realized, where the quantum Hall effect occurs without magnetic field. Its edge modes are anisotropic chiral, in which the velocities of up and down spins are different. There appears a spin polarized metal characterized by topological flat bands at the critical point between the QSHI and P-QHI. At Ez>EcrE_{z}>E_{\text{cr}} with a certain critical field EcrE_{\text{cr}}, a photo-induced spin-polarized quantum Hall insulator emerge. This is a new state of matter, possessing one Chern number and one half spin-Chern numbers. The edge mode supports a perfectly spin-polarized current, which are different from the chiral or helical edge modes. We newly discovered a single Dirac-cone state along a phase boundary. A distinctive hallmark of the state is that one of the two Dirac valleys is closed with a linear dispersion and the other open with a parabolic dispersion.

Keywords

Cite

@article{arxiv.1207.6694,
  title  = {Photo-Induced Topological Phase Transition and a Single Dirac-Cone State in Silicene},
  author = {Motohiko Ezawa},
  journal= {arXiv preprint arXiv:1207.6694},
  year   = {2013}
}

Comments

4 pages, 4 figures. arXiv admin note: text overlap with arXiv:1206.5378