4.6 Article

Strong-coupling Bose polarons out of equilibrium: Dynamical renormalization-group approach

Journal

PHYSICAL REVIEW A
Volume 97, Issue 3, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.97.033612

Keywords

-

Funding

  1. Harvard-MIT CUA, NSF [DMR-1308435]
  2. AFOSR Quantum Simulation MURI, AFOSR [FA9550-16-1-0323]
  3. Gordon and Betty Moore Foundation
  4. Marion Koser Stiftung
  5. physics department of the TU Kaiserslautern
  6. Department of Defense NDSEG Fellowship
  7. Division Of Materials Research
  8. Direct For Mathematical & Physical Scien [1308435] Funding Source: National Science Foundation

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When a mobile impurity interacts with a surrounding bath of bosons, it forms a polaron. Numerous methods have been developed to calculate how the energy and the effective mass of the polaron are renormalized by the medium for equilibrium situations. Here, we address the much less studied nonequilibrium regime and investigate how polarons form dynamically in time. To this end, we develop a time-dependent renormalization-group approach which allows calculations of all dynamical properties of the system and takes into account the effects of quantum fluctuations in the polaron cloud. We apply this method to calculate trajectories of polarons following a sudden quench of the impurity-boson interaction strength, revealing how the polaronic cloud around the impurity forms in time. Such trajectories provide additional information about the polaron's properties which are challenging to extract directly from the spectral function measured experimentally using ultracold atoms. At strong couplings, our calculations predict the appearance of trajectories where the impurity wavers back at intermediate times as a result of quantum fluctuations. Our method is applicable to a broader class of nonequilibrium problems. As a check, we also apply it to calculate the spectral function and find good agreement with experimental results. At very strong couplings, we predict that quantum fluctuations lead to the appearance of a dark continuum with strongly suppressed spectral weight at low energies. While our calculations start from an effective Frohlich Hamiltonian describing impurities in a three-dimensional Bose-Einstein condensate, we also calculate the effects of additional terms in the Hamiltonian beyond the Frohlich paradigm. We demonstrate that the main effect of these additional terms on the attractive side of a Feshbach resonance is to renormalize the coupling strength of the effective Frohlich model.

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