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Unconventional Flat Chern Bands and 2ee Charges in Skyrmionic Moiré Superlattices

Published 19 Nov 2021 in cond-mat.str-el, cond-mat.mes-hall, and cond-mat.supr-con | (2111.10410v1)

Abstract: The interplay of topological characteristics in real space and reciprocal space can lead to the emergence of unconventional topological phases. In this Letter, we implement a novel mechanism for generating higher-Chern flat bands on the basis of twisted bilayer graphene (TBG) coupled to topological magnetic structures in the form of the skyrmion lattice. In particular, we discover a scenario for generating C=2|C|=2 dispersionless electronic bands when the skyrmion periodicity and the moir\'e periodicity are matched. Following the Wilczek argument, the statistics of the charge-carrying excitations in this case is \textit{bosonic}, characterized by electronic charge Q=2eQ =2e, that is \textit{even} in units of electron charge ee. The required skyrmion coupling strength triggering the topological phase transition is realistic, with its threshold estimated as low as 4~meV. The Hofstadter butterfly spectrum of this phase is different resulting in an unexpected quantum Hall conductance sequence ±2e<sup>2h,</sup> ±4e<sup>2h,</sup>...\pm \frac{2 e<sup>2}{h},</sup> \ \pm \frac{4 e<sup>2}{h},</sup>... for TBG with skyrmion order.

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