Orbital-Selective Mott and Antiferromagnetic Phases in Diagonally Compressed Kagome Lattice
Abstract
We perform determinant quantum Monte Carlo simulations of the half-filled Hubbard model on a diagonally compressed kagome lattice, introducing exponential decay long-range hopping to account for the evolving bond length. By varying the lattice angle and the on-site interaction , double occupancy, charge compressibility, and spin-spin correlation functions of the whole system and each sub-lattice are measured. We find that geometric compression induces a clear sublattice differentiation: for , the A sublattice establishes long-range hoppings, which in turn suppresses the metallic behavior of the sublattice and drives a selective Mott transition; for , the - chains develop long-range antiferromagnetic correlations within the finite-size simulations, which in turn suppresses the metallic behavior of the sublattice and drives a selective Mott transition. The critical interaction for the sites decreases sharply near the onset of - antiferromagnetic correlations, while increases. These competing orders give rise to an orbital-selective Mott phase and a rich - phase diagram featuring paramagnetic-metal, paramagnetic-Mott, antiferromagnetic-metal, and antiferromagnetic-Mott states. Our results highlight the complex interplay between lattice geometry, magnetic frustration, and strong correlations in frustrated two-dimensional systems.
Keywords
Cite
@article{arxiv.2607.04621,
title = {Orbital-Selective Mott and Antiferromagnetic Phases in Diagonally Compressed Kagome Lattice},
author = {Jiewei Ding and Ho-Kin Tang and Wing Chi Yu},
journal= {arXiv preprint arXiv:2607.04621},
year = {2026}
}
Comments
16 pages, 14 figures