Reentrant topological phases and spin density wave induced by 1D moiré potentials

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Hauptverfasser: Zhang, Guo-Qing, Tang, Ling-Zhi, Quezada, L. F., Dong, Shi-Hai, Zhang, Dan-Wei
Format: Preprint
Veröffentlicht: 2025
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author Zhang, Guo-Qing
Tang, Ling-Zhi
Quezada, L. F.
Dong, Shi-Hai
Zhang, Dan-Wei
author_facet Zhang, Guo-Qing
Tang, Ling-Zhi
Quezada, L. F.
Dong, Shi-Hai
Zhang, Dan-Wei
contents Recent studies of 2D moiré materials have opened opportunities for advancing condensed matter physics. However, the effect of 1D moiré potentials on topological and correlated phases remains largely unexplored. Here we reveal a sequence of trivial-to-topological transitions and periodic-moiré-spin density waves induced by the 1D commensurate moiré potentials for spin-1/2 fermionic atoms. Such reentrant topology from a trivial phase is absent without the moiré potential and can be understood as the renormalization of topological parameters by the moiré strength. We then unveil the critical exponent and localization properties of the single-particle eigenstates. The periodic spin density wave of many-body ground states is contributed by the moiré potential, and is enhanced by on-site interactions but suppressed by nearest-neighbor interactions. Our results enrich the topological physics with multiple transitions and spin-density orders in 1D moiré systems, and the realization of the proposed model is promising in near-future ultracold atom setups.
format Preprint
id arxiv_https___arxiv_org_abs_2501_01656
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Reentrant topological phases and spin density wave induced by 1D moiré potentials
Zhang, Guo-Qing
Tang, Ling-Zhi
Quezada, L. F.
Dong, Shi-Hai
Zhang, Dan-Wei
Quantum Gases
Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Recent studies of 2D moiré materials have opened opportunities for advancing condensed matter physics. However, the effect of 1D moiré potentials on topological and correlated phases remains largely unexplored. Here we reveal a sequence of trivial-to-topological transitions and periodic-moiré-spin density waves induced by the 1D commensurate moiré potentials for spin-1/2 fermionic atoms. Such reentrant topology from a trivial phase is absent without the moiré potential and can be understood as the renormalization of topological parameters by the moiré strength. We then unveil the critical exponent and localization properties of the single-particle eigenstates. The periodic spin density wave of many-body ground states is contributed by the moiré potential, and is enhanced by on-site interactions but suppressed by nearest-neighbor interactions. Our results enrich the topological physics with multiple transitions and spin-density orders in 1D moiré systems, and the realization of the proposed model is promising in near-future ultracold atom setups.
title Reentrant topological phases and spin density wave induced by 1D moiré potentials
topic Quantum Gases
Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
url https://arxiv.org/abs/2501.01656