Mechanism of skyrmion condensation and pairing for twisted bilayer graphene
ORAL
Abstract
When quantum flavor Hall insulator phases of itinerant fermions are disordered by strong quantum fluctuations, the condensation of skyrmion textures of order parameter fields can lead to superconductivity. In this work, we address the mechanism of skyrmion condensation by considering the scattering between (2+1)-dimensional, Weyl fermions and hedgehog type tunneling configurations of order parameters that violate the skyrmion-number conservation law. We show the quantized, flavor Hall conductivity (σfxy) controls the degeneracy of topologically protected, fermion zero-modes, localized on hedgehogs, and the overlap between zero-mode eigenfunctions or 't Hooft vertex determines the nature of pairing. We demonstrate the quantum-disordered, flavor Hall insulators with σfxy=2N lead to different types of charge 2Ne− superconductivity. Implications for the competition among flavor Hall insulators, the charge 2e− paired states in BCS and pair-density-wave channels, and the composite, charge 4e− superconductors for twisted bilayer graphene are outlined.
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Publication: D. Jing, A.C. Tyner, and P. Goswami, Mechanism of skyrmion condensation and pairing for twisted bi-layer graphene, arXiv: 2107.00012
Presenters
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Dian Jing
Northwestern University
Authors
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Dian Jing
Northwestern University