Journal article Unconventional domain tessellations in moiré-of-moiré lattices
Daesung Park (author) (Search by this author)
;
Changwon Park (author) (Search by this author)
;
Kunihiro Yananose (author) (Search by this author)
;
Eunjung Ko (author) (Search by this author)
;
Byunghyun Kim (author) (Search by this author)
;
Rebecca Engelke (author) (Search by this author)
;
Xi Zhang (author) (Search by this author)
;
Konstantin Davydov (author) (Search by this author)
;
Matthew Green (author) (Search by this author)
;
Hyun-Mi Kim (author) (Search by this author)
;
Sang Hwa Park (author) (Search by this author)
;
Jae Heon Lee (author) (Search by this author)
;
Seul-Gi Kim (author) (Search by this author)
;
Hyeongkeun Kim (author) (Search by this author)
;
Kenji Watanabe (author) (Search by this author)
ORCID SAMURAI ;
Takashi Taniguchi (author) (Search by this author)
ORCID SAMURAI ;
Sang Mo Yang (author) (Search by this author)
;
Ke Wang (author) (Search by this author)
;
Philip Kim (author) (Search by this author)
;
Young-Woo Son (author) (Search by this author)
;
Hyobin Yoo (author) (Search by this author)
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Citation
Daesung Park, Changwon Park, Kunihiro Yananose, Eunjung Ko, Byunghyun Kim, Rebecca Engelke, Xi Zhang, Konstantin Davydov, Matthew Green, Hyun-Mi Kim, Sang Hwa Park, Jae Heon Lee, Seul-Gi Kim, Hyeongkeun Kim, Kenji Watanabe, Takashi Taniguchi, Sang Mo Yang, Ke Wang, Philip Kim, Young-Woo Son, Hyobin Yoo. Unconventional domain tessellations in moiré-of-moiré lattices. Nature. 2025, 641 (8064), 896-903. https://doi.org/10.1038/s41586-025-08932-0

Description:

(abstract)

Imposing incommensurable periodicity on the periodic atomic lattice can lead to complex structural phases consisting of locally periodic structure bounded by topological defects. Twisted trilayer graphene (TTG) is an ideal material platform to study the interplay between different atomic periodicities, which can be tuned by twist angles between the layers, leading to moiré-of-moiré lattices. Interlayer and intralayer interactions between two interfaces in TTG transform this moiré-of-moiré lattice into an intricate network of domain structures at small twist angles, which can harbour exotic electronic behaviours. Here we report a complete structural phase diagram of TTG with atomic-scale lattice reconstruction. Using transmission electron microscopy (TEM) combined with a new interatomic potential simulation27,28, we show several large-scale moiré lattices, including triangular, kagome and a corner-shared hexagram-shaped domain pattern. Each domain is bounded by a 2D network of domain-wall lattices. In the limit of small twist angles, two competing structural orders—rhombohedral and Bernal stackings—with a slight energy difference cause unconventional lattice reconstruction with spontaneous symmetry breaking (SSB) and nematic instability, highlighting the importance of long-range interlayer interactions across entire van der Waals layers. The diverse tessellation of distinct domains, whose topological network can be tuned by the adjustment of the twist angles, establishes TTG as a platform for exploring the interplay between emerging quantum properties and controllable nontrivial lattices.

Rights:

  • In Copyright

    This version of the article has been accepted for publication, after peer review (when applicable) and is subject to Springer Nature’s AM terms of use, but is not the Version of Record and does not reflect post-acceptance improvements, or any corrections. The Version of Record is available online at: https://doi.org/10.1038/s41586-025-08932-0

Keyword: Twisted trilayer graphene, Moiré lattice, Lattice reconstruction

Date published: 2025-05-22

Publisher: Springer Science and Business Media LLC

Journal:

  • Nature (ISSN: 00280836) vol. 641 issue. 8064 p. 896-903

Funding:

Manuscript type: Author's version (Accepted manuscript)

MDR DOI:

First published URL: https://doi.org/10.1038/s41586-025-08932-0

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Updated at: 2026-07-28 13:23:16 +0900

Published on MDR: 2026-07-28 14:26:10 +0900

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