Recognition: unknown
Polarons in atomic gases and two-dimensional semiconductors
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In this work we provide a comprehensive review of theoretical and experimental studies of the properties of polarons formed by mobile impurities strongly interacting with quantum many-body systems. We present a unified perspective on the universal concepts and theoretical techniques used to characterize polarons in two distinct platforms, ultracold atomic gases and atomically-thin transition metal dichalcogenides, which are linked by many deep parallels. We review polarons in both fermionic and bosonic environments, highlighting their similarities and differences including the intricate interplay between few- and many-body physics. Various kinds of polarons with long-range interactions or in magnetic backgrounds are discussed, and the theoretical and experimental progress towards understanding interactions between polarons is described. We outline how polaron physics, regarded as the low density limit of quantum mixtures, provides fundamental insights regarding the phase diagram of complex condensed matter systems. Furthermore, we describe how polarons may serve as quantum sensors of many-body physics in complex environments. Our work highlights the open problems, identifies new research directions and provides a comprehensive framework for this rapidly evolving research field.
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Cited by 4 Pith papers
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Observation of low-lying impurity states in Bose-Einstein condensates
Pump-probe spectroscopy on impurities in a potassium BEC reveals low-energy spectral features below the Bose polaron that are consistent with bipolaron formation.
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Explicit proof of Anderson's orthogonality catastrophe for the one-dimensional Fermi polaron with attractive interaction
In the 1D attractive Fermi polaron the quasi-particle residue decays as Z = W N^{-2 δ_F² / π²} with δ_F the Bethe-ansatz phase shift at the Fermi edge and W obtained numerically.
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Scale invariance of the polaron energy at the Mott-superfluid critical point
Polaron energy is scale-invariant at the Mott-superfluid quantum critical point, yielding an unexplained scaling exponent from finite-size scaling.
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Hole and spin dynamics in an anti-ferromagnet close to half filling
A conserving diagrammatic theory for the doped Hubbard model shows four magnetic polaron hole pockets, doping-softened magnons, and pseudogap-like lattice modulation responses near half filling.
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