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g+ig topological superconductivity in the 30^o-twisted bilayer graphene
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g+ig topological superconductivity in the 30^o-twisted bilayer graphene
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Based on our revised perturbational-band theory, we study possible pairing states driven by interaction in the electron-doped quasicrystal 30\degree-twisted bilayer graphene. Our mean-field study on the related t-J model predicts that, the beneath-van-Hove and beyond-van-Hove low doping regimes are covered by the chiral $d+id$ and $g+ig$ topological superconductivities (TSCs) respectively. The $g+ig$-TSC possesses a pairing angular momentum 4, and hence following each effective $C_{12}$- rotation by $\Delta\phi=n\pi/6$, the pairing phase changes $4\Delta\phi$. This intriguing TSC is novel, as it belongs to a special 2D $E_4$- irreducible representation of the effective $D_{12}$ point group unique to this quasicystal and absent on periodic lattices. The Ginzburg-Landau theory suggested that the $g+ig$- TSC originates from the Josephson coupling between the $d+id$ pairings on the two mono-layers.
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Cited by 1 Pith paper
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Landau levels and magneto-optics in 30$^\circ$ quasi-periodic twisted bilayer graphene
A symmetry-adapted quasi-band method computes Landau levels and magneto-optical conductivity in 30° quasi-periodic twisted bilayer graphene, classifying levels by Landau index and angular momentum while revealing weak...
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