Polaron spectroscopy of a bilayer excitonic insulator
arXiv:2210.03658 · doi:10.1103/PhysRevB.107.155303
Abstract
Recent advances in fabrication of two dimensional materials and their moiré heterostructures have opened up new avenues for realization of ground-state excitonic insulators, where the structure spontaneously develops a finite interlayer electronic polarization. We propose and analyze a scheme where an optically generated intralayer exciton is screened by excitations out of the excitonic insulator to form interlayer polarons. Using Quantum Monte-Carlo calculations we first determine the binding energy of the biexciton state composed of inter- and intralayer excitons, which plays a central role in understanding polaron formation. We describe the excitations out of the ground-state condensate using BCS theory and use a single interacting-quasiparticle-pair excitation Ansatz to describe dynamical screening of optical excitations. Our predictions carry the hallmarks of the excitonic insulator excitation spectrum and show how changing the interlayer exciton binding energy by increasing the layer separation modifies the optical spectra.
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Cited by in corpus (10)
- Realizing Topological Superconductivity in Tunable Bose-Fermi Mixtures with Transition Metal Dichalcogenide Heterostructures
- Confined Trions and Mott-Wigner States in a Purely Electrostatic Moiré Potential
- Superconductivity induced by strong electron-exciton coupling in doped atomically thin semiconductor heterostructures
- Polaron spectroscopy of interacting Fermi systems: insights from exact diagonalization
- Chiral polaron formation on the edge of topological quantum matter
- Mott-Enhanced Exciton Condensation in a Hubbard bilayer
- Quantum Oscillation in Excitonic Insulating Electron-Hole Bilayer
- Feshbach Resonances in Exciton-Charge-Carrier Scattering in Semiconductor Bilayers
- Excitonic Bose-polarons in electron-hole bilayers
- Probing spatially resolved spin density correlations with trapped excitons