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Polaron formation in insulators and the key role of hole scattering processes: Band insulators, charge density waves and Mott transition
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A mobile impurity immersed in a non-interacting Fermi sea is dressed by the gapless particle-hole excitations of the fermionic medium. This conventional Fermi-polaron setting is well described by the so-called ladder approximation, which consists in neglecting impurity-hole scattering processes. In this work, we analyze polaron formation in the context of insulating states of matter, considering increasing levels of correlation in the medium:~band insulators originating from external periodic potentials, spontaneously-formed charge density waves, and a Fermi-Hubbard system undergoing a metal-Mott insulator transition. The polaron spectral function is shown to exhibit striking signatures of the underlying fermionic background, such as the single-particle band gap, particle-hole symmetry and the transition to the Mott state. These signatures are identified within the framework of the Chevy ansatz, i.e. upon restricting the Hilbert space to single particle-hole excitations. Interestingly, we find that the ladder approximation is inaccurate in these band systems, due to the fact that the particle and hole scattering phase spaces are comparable. Our results provide a step forward in the understanding of polaron formation in correlated many-body media, which are relevant to both cold-atom and semiconductor experiments.
Forward citations
Cited by 3 Pith papers
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Lattice Bose polarons at strong coupling and quantum criticality
A strong-coupling ladder theory for an impurity in a Bose-Hubbard bath near the MI-SF critical point predicts a cusp and a new polaron branch, with energies in good agreement with quantum Monte Carlo.
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On polarons and dimerons in the two-dimensional attractive Hubbard model
In the 2D attractive Hubbard model, the polaron-to-dimeron transition present at low spin-up filling disappears above a filling of about 20%, leaving the polaron as the stable ground state at all couplings.
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Polaronic dressing of bound states
Polaronic dressing from a Bose-Einstein condensate destroys a loosely bound dimer of two impurity atoms while a tightly bound dimer survives, with the crossover set by the ratio of dimer binding energy to polaron energy.
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