Topological Mott Insulator with Bosonic Edge Modes in 1D Fermionic Superlattices
Abstract
We investigate topological phase transitions driven by interaction and identify a novel topological Mott insulator state in one-dimensional fermionic optical superlattices through numerical density matrix renormalization group (DMRG) method. Remarkably, the low-energy edge excitations change from spin-1/2 fermionic single-particle modes to spin-1 bosonic collective modes across the phase transition. Due to spin-charge separation, the low-energy theory is governed by an effective spin superexchange model, whereas the charge degree of freedom is fully gapped out. Such topological Mott state can be characterized by a spin Chern number and gapless magnon modes protected by a finite spin gap. The proposed experimental setup is simple and may pave the way for the experimental observation of exotic topological Mott states.
Cite
@article{arxiv.1712.03671,
title = {Topological Mott Insulator with Bosonic Edge Modes in 1D Fermionic Superlattices},
author = {Haiping Hu and Shu Chen and Tian-Sheng Zeng and Chuanwei Zhang},
journal= {arXiv preprint arXiv:1712.03671},
year = {2019}
}
Comments
7 pages, 5 figures