Loop Current Order on the Kagome Lattice

Fuente: arXiv
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Main Authors: Zhan, Jun, Hohmann, Hendrik, Dürrnagel, Matteo, Fu, Ruiqing, Zhou, Sen, Wang, Ziqiang, Thomale, Ronny, Wu, Xianxin, Hu, Jiangping
Format: Preprint
Published: 2025
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author Zhan, Jun
Hohmann, Hendrik
Dürrnagel, Matteo
Fu, Ruiqing
Zhou, Sen
Wang, Ziqiang
Thomale, Ronny
Wu, Xianxin
Hu, Jiangping
author_facet Zhan, Jun
Hohmann, Hendrik
Dürrnagel, Matteo
Fu, Ruiqing
Zhou, Sen
Wang, Ziqiang
Thomale, Ronny
Wu, Xianxin
Hu, Jiangping
contents Recent discoveries in kagome materials have unveiled their capacity to harbor exotic quantum states, including intriguing charge density wave (CDW) and superconductivity. Notably, accumulating experimental evidence suggests time-reversal symmetry breaking within the CDW, hinting at the long-pursued loop current order (LCO). Despite extensive research efforts, achieving its model realization and understanding the mechanism through unbiased many-body simulations have remained both elusive and challenging. In this Letter, we develop a microscopic model for LCO on the spinless kagome lattice with nonlocal interactions, utilizing unbiased functional renormalization group calculations to explore ordering tendencies across all two-particle scattering channels. At the Van Hove filling, we identify sublattice interference to suppress onsite CDW order, leaving LCO, charge bond order, and nematic CDW state as the main competitors. Remarkably, a $2\times2$ LCO emerges as the many-body ground state over a significant parameter space with strong second nearest-neighbor repulsion, stemming from the unique interplay between sublattice characters and lattice geometry. The resulting electronic model with LCO bears similarities to the Haldane model and culminates in a quantum anomalous Hall state. We also discuss potential experimental implications for kagome metals.
format Preprint
id arxiv_https___arxiv_org_abs_2506_01648
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Loop Current Order on the Kagome Lattice
Zhan, Jun
Hohmann, Hendrik
Dürrnagel, Matteo
Fu, Ruiqing
Zhou, Sen
Wang, Ziqiang
Thomale, Ronny
Wu, Xianxin
Hu, Jiangping
Strongly Correlated Electrons
Superconductivity
Recent discoveries in kagome materials have unveiled their capacity to harbor exotic quantum states, including intriguing charge density wave (CDW) and superconductivity. Notably, accumulating experimental evidence suggests time-reversal symmetry breaking within the CDW, hinting at the long-pursued loop current order (LCO). Despite extensive research efforts, achieving its model realization and understanding the mechanism through unbiased many-body simulations have remained both elusive and challenging. In this Letter, we develop a microscopic model for LCO on the spinless kagome lattice with nonlocal interactions, utilizing unbiased functional renormalization group calculations to explore ordering tendencies across all two-particle scattering channels. At the Van Hove filling, we identify sublattice interference to suppress onsite CDW order, leaving LCO, charge bond order, and nematic CDW state as the main competitors. Remarkably, a $2\times2$ LCO emerges as the many-body ground state over a significant parameter space with strong second nearest-neighbor repulsion, stemming from the unique interplay between sublattice characters and lattice geometry. The resulting electronic model with LCO bears similarities to the Haldane model and culminates in a quantum anomalous Hall state. We also discuss potential experimental implications for kagome metals.
title Loop Current Order on the Kagome Lattice
topic Strongly Correlated Electrons
Superconductivity
url https://arxiv.org/abs/2506.01648