Phase diagram of the $\nu = 2$ quantum Hall state in bilayer graphene
Abstract
Bilayer graphene exhibits a rich phase diagram in the quantum Hall regime, arising from a multitude of internal degrees of freedom, including spin, valley, and orbital indices. The variety of fractional quantum Hall states between filling factors suggests, among other things, a quantum phase transition between valley-unpolarized and polarized states at a perpendicular electric field . We find the behavior of with changes markedly as is reduced. At , may even vanish when is sufficiently small. We present a theoretical model for lattice-scale interactions which explains these observations; surprisingly, both repulsive and attractive components in the interactions are required. Within this model we analyze the nature of the state as a function of the magnetic and electric fields, and predict that valley-coherence may emerge for in the high regime. This suggests the system supports Kekule bond-ordering, which could in principle be verified via STM measurements.
Keywords
Cite
@article{arxiv.2305.04888,
title = {Phase diagram of the $\nu = 2$ quantum Hall state in bilayer graphene},
author = {Udit Khanna and Ke Huang and Ganpathy Murthy and H. A. Fertig and Kenji Watanabe and Takashi Taniguchi and Jun Zhu and Efrat Shimshoni},
journal= {arXiv preprint arXiv:2305.04888},
year = {2023}
}
Comments
7 pages, 3 figures and Supplementary Material