Pseudospin Order in Monolayer, Bilayer, and Double-Layer Graphene
Mesoscale and Nanoscale Physics
2012-02-14 v3
Abstract
Graphene is a gapless semiconductor in which conduction and valence band wavefunctions differ only in the phase difference between their projections onto the two sublattices of the material's two-dimensional honeycomb crystal structure. We explain why this circumstance creates openings for broken symmetry states, including antiferromagnetic states in monolayer and bilayer graphene and exciton condensates in double-layer graphene, that are momentum space analogs of the real-space order common in systems with strong local interactions. We discuss some similarities among, and some differences between, these three broken symmetry states.
Keywords
Cite
@article{arxiv.1109.0307,
title = {Pseudospin Order in Monolayer, Bilayer, and Double-Layer Graphene},
author = {Allan H. MacDonald and Jeil Jung and Fan Zhang},
journal= {arXiv preprint arXiv:1109.0307},
year = {2012}
}
Comments
20 pages 4 figures. Contribution for the Proceedings of the Nobel Symposium on Graphene. Updated references