Article Time-domain signatures of distinct correlated insulators in a moiré superlattice

Eric A. Arsenault ORCID ; Yiliu Li ; Birui Yang ORCID ; Takashi Taniguchi SAMURAI ORCID ; Kenji Watanabe SAMURAI ORCID ; James C. Hone ORCID ; Cory R. Dean ORCID ; Xiaodong Xu ; X.-Y. Zhu ORCID

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Citation
Eric A. Arsenault, Yiliu Li, Birui Yang, Takashi Taniguchi, Kenji Watanabe, James C. Hone, Cory R. Dean, Xiaodong Xu, X.-Y. Zhu. Time-domain signatures of distinct correlated insulators in a moiré superlattice. Nature Communications. 2025, 16 (1), 549.

Description:

(abstract)

Among expanding discoveries of quantum phases in moiré superlattices, correlated insulators stand out as both the most stable and most commonly observed. Despite the central importance of these states in moiré physics, little is known about their underlying nature. Here, we use pump-probe spectroscopy to show distinct time-domain signatures of correlated insulators at fillings of one (v = -1) and two (v = -2) holes per moiré unit cell in the angle-aligned WSe2/WS2 system. Following photo-doping, we find that the disordering time of the v = -1 state is independent of excitation density (nex), as expected from the characteristic phonon response time associated with a polaronic state. In contrast, the disordering time of the v = -2 state scales with 1/(nex)^1/2, in agreement with plasmonic screening from free holons and doublons. These states display disparate reordering behavior dominated either by first order (v = -1) or second order (v = -2) recombination, suggesting the presence of Hubbard excitons and free carrier-like holons/doublons, respectively. Our work delineates the roles of electron-phonon (e-ph) versus electron-electron (e-e) interactions in correlated insulators on the moiré landscape and establishes non-equilibrium responses as mechanistic signatures for distinguishing and discovering quantum phases.

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Keyword: Correlated insulators, pump-probe spectroscopy, WSe2/WS2

Date published: 2025-01-09

Publisher: Springer Science and Business Media LLC

Journal:

  • Nature Communications (ISSN: 20411723) vol. 16 issue. 1 549

Funding:

  • National Science Foundation DMR-2011738
  • U.S. Department of Energy DE-SC0024343
  • U.S. Department of Energy DE-SC0019443

Manuscript type: Publisher's version (Version of record)

MDR DOI:

First published URL: https://doi.org/10.1038/s41467-024-54886-8

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Updated at: 2025-02-05 12:30:31 +0900

Published on MDR: 2025-02-05 12:30:31 +0900

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