Quantum spin Hall effect and spin-charge separation in a kagome lattice
Mesoscale and Nanoscale Physics
2011-08-03 v2 Quantum Gases
Abstract
A two-dimensional kagome lattice is theoretically investigated within a simple tight-binding model, which includes the nearest neighbor hopping term and the intrinsic spin-orbit interaction between the next nearest neighbors. By using the topological winding properties of the spin-edge states on the complex-energy Riemann surface, the spin Hall conductance is obtained to be quantized as () in insulating phases. This result keeps consistent with the numerical linear-response calculation and the \textbf{Z} topological invariance analysis. When the sample boundaries are connected in twist, by which two defects with flux are introduced, we obtain the spin-charge separated solitons at 1/3 (or 2/3) filling.
Cite
@article{arxiv.0909.2465,
title = {Quantum spin Hall effect and spin-charge separation in a kagome lattice},
author = {Zhigang Wang and Ping Zhang},
journal= {arXiv preprint arXiv:0909.2465},
year = {2011}
}
Comments
13 NJP pages, 7 figures