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Main Authors: Fernandes, Rafael M., Birol, Turan, Ye, Mengxing, Vanderbilt, David
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2502.16657
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author Fernandes, Rafael M.
Birol, Turan
Ye, Mengxing
Vanderbilt, David
author_facet Fernandes, Rafael M.
Birol, Turan
Ye, Mengxing
Vanderbilt, David
contents In loop-current states, interacting electronic degrees of freedom collectively establish interatomic currents, in a rare example of magnetism in which spin degrees of freedom do not play the primary role. The main impact of such states on the electronic spectrum is not via the standard Zeeman term, but via the kinetic energy, in which hopping parameters develop non-trivial phases that break time-reversal symmetry. The recent proposal of loop-current states in kagome superconductors has stimulated renewed interest in this exotic type of magnetism. In this perspective, we use kagome materials as a scaffolding to frame the basic phenomenology of loop-current states. We provide an overview of the group-theoretical properties of loop currents, as well as of relevant microscopic models and ab initio methods. Particular emphasis is given to the comparison with spin-density waves in the presence of spin-orbit coupling, as well as to the anharmonic coupling with charge-density waves, which is present in systems with threefold rotational symmetry. We also provide a brief overview of the current status of loop-current order in kagome metals and discuss open challenges including their experimental detection and interplay with other orders.
format Preprint
id arxiv_https___arxiv_org_abs_2502_16657
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Loop-current order through the kagome looking glass
Fernandes, Rafael M.
Birol, Turan
Ye, Mengxing
Vanderbilt, David
Strongly Correlated Electrons
Superconductivity
In loop-current states, interacting electronic degrees of freedom collectively establish interatomic currents, in a rare example of magnetism in which spin degrees of freedom do not play the primary role. The main impact of such states on the electronic spectrum is not via the standard Zeeman term, but via the kinetic energy, in which hopping parameters develop non-trivial phases that break time-reversal symmetry. The recent proposal of loop-current states in kagome superconductors has stimulated renewed interest in this exotic type of magnetism. In this perspective, we use kagome materials as a scaffolding to frame the basic phenomenology of loop-current states. We provide an overview of the group-theoretical properties of loop currents, as well as of relevant microscopic models and ab initio methods. Particular emphasis is given to the comparison with spin-density waves in the presence of spin-orbit coupling, as well as to the anharmonic coupling with charge-density waves, which is present in systems with threefold rotational symmetry. We also provide a brief overview of the current status of loop-current order in kagome metals and discuss open challenges including their experimental detection and interplay with other orders.
title Loop-current order through the kagome looking glass
topic Strongly Correlated Electrons
Superconductivity
url https://arxiv.org/abs/2502.16657