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Flattening conduction and valence bands for interlayer excitons in a moiré MoS/WSe heterobilayer. | LitMetric

AI Article Synopsis

  • The study examines how the conduction and valence bands of interlayer excitons in MoS/WSe van der Waals heterobilayers can be adjusted using factors like twist angle, pressure, and electric fields.
  • An efficient continuum model was used to represent the moiré patterns caused by twisting and lattice mismatch, revealing that these patterns aren't strong enough to significantly flatten the bands.
  • The research highlights that applying vertical pressure and perpendicular electric fields can significantly increase the effective mass and band flattening, offering new avenues for achieving flat bands and exploring excitonic phenomena.

Article Abstract

We explore the flatness of conduction and valence bands of interlayer excitons in MoS/WSe van der Waals heterobilayers, tuned by interlayer twist angle, pressure, and external electric field. We employ an efficient continuum model where the moiré pattern from lattice mismatch and/or twisting is represented by an equivalent mesoscopic periodic potential. We demonstrate that the mismatch moiré potential is too weak to produce significant flattening. Moreover, we draw attention to the fact that the quasi-particle effective masses around the Γ-point and the band flattening are with twisting. As an alternative approach, we show (i) that reducing the interlayer distance by uniform vertical pressure can significantly increase the effective mass of the moiré hole, and (ii) that the moiré depth and its band flattening effects are strongly enhanced by accessible electric gating fields perpendicular to the heterobilayer, with resulting electron and hole effective masses increased by more than an order of magnitude - leading to record-flat bands. These findings impose boundaries on the commonly generalized benefits of moiré twistronics, while also revealing alternative feasible routes to achieve truly flat electron and hole bands to carry us to strongly correlated excitonic phenomena on demand.

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Source
http://dx.doi.org/10.1039/d3nr01183fDOI Listing

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