Orderly disorder in magic-angle twisted trilayer graphene

Magic-angle twisted trilayer graphene (TTG) has recently emerged as a platform to engineer strongly correlated flat bands. We reveal the normal-state structural and electronic properties of TTG using low-temperature scanning tunneling microscopy at twist angles for which superconductivity has been o...

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Veröffentlicht in:Science (American Association for the Advancement of Science) 2022-04, Vol.376 (6589), p.193-199
Hauptverfasser: Turkel, Simon, Swann, Joshua, Zhu, Ziyan, Christos, Maine, Watanabe, K, Taniguchi, T, Sachdev, Subir, Scheurer, Mathias S, Kaxiras, Efthimios, Dean, Cory R, Pasupathy, Abhay N
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Sprache:eng
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Zusammenfassung:Magic-angle twisted trilayer graphene (TTG) has recently emerged as a platform to engineer strongly correlated flat bands. We reveal the normal-state structural and electronic properties of TTG using low-temperature scanning tunneling microscopy at twist angles for which superconductivity has been observed. Real trilayer samples undergo a strong reconstruction of the moiré lattice, which locks layers into near-magic-angle, mirror symmetric domains comparable in size with the superconducting coherence length. This relaxation introduces an array of localized twist-angle faults, termed twistons and moiré solitons, whose electronic structure deviates strongly from the background regions, leading to a doping-dependent, spatially granular electronic landscape. The Fermi-level density of states is maximally uniform at dopings for which superconductivity has been observed in transport measurements.
ISSN:0036-8075
1095-9203
DOI:10.1126/science.abk1895