4.8 Article

Dynamical Phases and Quantum Correlations in an Emitter-Waveguide System with Feedback

Journal

PHYSICAL REVIEW LETTERS
Volume 127, Issue 13, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.127.133601

Keywords

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Funding

  1. European Unions H2020 research and innovation program [800942]
  2. Wissenschaftler-Ruckkehrprogramm GSO/CZS of the Carl-Zeiss-Stiftung
  3. German Scholars Organization e.V.
  4. Deutsche Forschungsgemeinsschaft (DFG, German Research Foundation) [435696605]
  5. Deutsche Forschungsgemeinsschaft (DFG, German Research Foundation) under Germanys Excellence Strategy-EXC [2064/1, 390727645]
  6. Royal Society
  7. EPSRC [DH130145]
  8. Royal Society [DH130145] Funding Source: Royal Society

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This study investigates the creation and control of emergent collective behavior and quantum correlations using feedback in an emitter-waveguide system. It shows the emergence of a time-crystal phase and the control of many-body quantum correlations through feedback strength. The largely analytical results quantify spin squeezing and fluctuations, revealing critical scaling close to the transition to the time crystal.
We investigate the creation and control of emergent collective behavior and quantum correlations using feedback in an emitter-waveguide system using a minimal model. Employing homodyne detection of photons emitted from a laser-driven emitter ensemble into the modes of a waveguide allows for the generation of intricate dynamical phases. In particular, we show the emergence of a time-crystal phase, the transition to which is controlled by the feedback strength. Feedback enables furthermore the control of many-body quantum correlations, which become manifest in spin squeezing in the emitter ensemble. Developing a theory for the dynamics of fluctuation operators we discuss how the feedback strength controls the squeezing and investigate its temporal dynamics and dependence on system size. The largely analytical results allow to quantify spin squeezing and fluctuations in the limit of large number of emitters, revealing critical scaling of the squeezing close to the transition to the time crystal. Our study corroborates the potential of integrated emitter-waveguide systems-which feature highly controllable photon emission channels-for the exploration of collective quantum phenomena and the generation of resources, such as squeezed states, for quantum enhanced metrology.

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