Multiple topological transitions in twisted bilayer graphene near the first magic angle
Kasra Hejazi, Chunxiao Liu, Hassan Shapourian, Xiao Chen, Leon Balents

TL;DR
This paper investigates the topological transitions of flat bands in twisted bilayer graphene near the first magic angle, revealing multiple transitions caused by Dirac node dynamics and proposing a minimal six-band model to describe these phenomena.
Contribution
It introduces a six-band model capturing the Dirac node evolution and topological transitions in TBG near the first magic angle, extending understanding beyond single-angle flat band observations.
Findings
Multiple topological transitions occur near the first magic angle.
Dirac nodes are created and annihilated at high symmetry points.
A six-band model accurately describes the low-energy physics.
Abstract
Recent experiments have observed strongly correlated physics in twisted bilayer graphene (TBG) at very small angles, along with nearly flat electron bands at certain fillings. A good starting point in understanding the physics is a continuum model (CM) proposed by Lopes dos Santos et al. [Phys. Rev. Lett. 99, 256802 (2007)] and Bistritzer et al. [PNAS 108, 12233 (2011)] for TBG at small twist angles, which successfully predicts the bandwidth reduction of the middle two bands of TBG near the first magic angle . In this paper, we analyze the symmetries of the CM and investigate the low energy flat band structure in the entire moir\'e Brillouin zone near . Instead of observing flat bands at only one "magic" angle, we notice that the bands remain almost flat within a small range around , where multiple topological transitions occur. The topological…
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