Self-doped flat band and spin-triplet superconductivity in monolayer 1T-TaSeTe.

J Phys Condens Matter

Department of Applied Physics, Aalto University, 02150 Espoo, Finland.

Published: June 2024

Two-dimensional van der Waals materials have become an established platform to engineer flat bands which can lead to strongly-correlated emergent phenomena. In particular, the family of Ta dichalcogenides in the 1T phase presents a star-of-David charge density wave that creates a flat band at the Fermi level. For TaSand TaSethis flat band is at half filling leading to a magnetic insulating phase. In this work, we theoretically demonstrate that ligand substitution in the TaSe2-xTesystem produces a transition from the magnetic insulator to a non-magnetic metal in which the flat band gets doped away from half-filling. Forx∈[0.846,1.231]the spin-polarized flat band is self-doped and the system becomes a magnetic metal. In this regime, we show that attractive interactions promote three different spin-triplet superconducting phases as a function of, corresponding to a nodal f-wave and two topologically-different chiral p-wave superconducting phases. Our results establish monolayer TaSe2-xTeas a promising platform for correlated flat band physics leading to unconventional superconducting states.

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http://dx.doi.org/10.1088/1361-648X/ad5946DOI Listing

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