English

Revisiting Quantum Feedback Control: Disentangling the Feedback-induced Phase from the Corresponding Amplitude

Quantum Physics 2020-05-19 v1

Abstract

Coherent time-delayed feedback allows the control of a quantum system and its partial stabilization against noise and decoherence. The crucial and externally accessible parameters in such control setups are the round-trip-induced delay time τ\tau and the frequencies ω\omega of the involved optical transitions which are typically controllable via global parameters like temperature, bias or strain. They influence the dynamics via the amplitude and the phase ϕ=ωτ\phi = \omega \tau of the feedback signal. These quantities are, however, not independent. Here, we propose to control the feedback phase via a microwave pump field. Using the example of a Λ\Lambda-type three-level system, we show that the Rabi frequency of the pump field induces phase shifts on demand and therefore increases the applicability of coherent quantum feedback control protocols.

Keywords

Cite

@article{arxiv.1909.08972,
  title  = {Revisiting Quantum Feedback Control: Disentangling the Feedback-induced Phase from the Corresponding Amplitude},
  author = {Kisa Barkemeyer and Regina Finsterhölzl and Andreas Knorr and Alexander Carmele},
  journal= {arXiv preprint arXiv:1909.08972},
  year   = {2020}
}
R2 v1 2026-06-23T11:20:13.718Z