Bosonic Peierls state emerging from the one-dimensional Ising-Kondo interaction
Abstract
As an important effect induced by the particle-lattice interaction, the Peierls transition, a hot topic in condensed matter physics, is usually believed to occur in the one-dimensional fermionic systems. We here study a bosonic version of the one-dimensional Ising-Kondo lattice model, which describes itinerant bosons interact with the localized magnetic moments via only longitudinal Kondo exchange.\ We show that, by means of perturbation analysis and numerical density-matrix renormalization group method, a bosonic analog of the Peierls state can occur in proper parameters regimes. The Peierls state here is characterized by the formation of a long-range spin-density-wave order, the periodicity of which is set by the density of the itinerant bosons. The ground-state phase diagram is mapped out by extrapolating the finite-size results to thermodynamic limit. Apart from the bosonic Peierls state, we also reveal the presence of some other magnetic orders, including a paramagnetic phase and a ferromagnetic phase. We finally propose a possible experimental scheme with ultracold atoms in optical lattices. Our results broaden the frontiers of the current understanding of the one-dimensional particle-lattice interaction system.
Cite
@article{arxiv.2411.16357,
title = {Bosonic Peierls state emerging from the one-dimensional Ising-Kondo interaction},
author = {Jingtao Fan and Xiaofan Zhou and Suotang Jia},
journal= {arXiv preprint arXiv:2411.16357},
year = {2025}
}
Comments
12 pages, 11 figures