Stability and properties of high-buckled two-dimensional tin and lead
Abstract
In realizing practical non-trivial topological electronic phases stable structures need to be determined first. Tin and lead do stabilize an optimal two-dimensional high-buckled phase --a hexagonal-close packed bilayer structure with nine-fold atomic coordination-- and they do not stabilize topological fullerenes, as demonstrated by energetics, phonon dispersion curves, and the structural optimization of finite-size samples. The high-buckled phases are metallic due to their high atomic coordination. The optimal structure of fluorinated tin lacks three-fold symmetry and it stabilizes small samples too. It develops two oblate conical valleys on the first Brillouin zone coupling valley, sublattice, and spin degrees of freedom with a novel term, thus making it a new 2D platform for valleytronics.
Keywords
Cite
@article{arxiv.1411.5702,
title = {Stability and properties of high-buckled two-dimensional tin and lead},
author = {Pablo Rivero and Jia-An Yan and Victor M. Garcia-Suarez and Jaime Ferrer and Salvador Barraza-Lopez},
journal= {arXiv preprint arXiv:1411.5702},
year = {2014}
}
Comments
Submitted on 07/27/14. Accepted as a Rapid Communication on 11/20/14