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February 8, 20260 citationsOpen Access

Continuous-wave quantum light control via engineered Rydberg-induced dephasing

ITIason TsiamisOKOleksandr KyriienkoASAnders S. Sørensen

Key Points

  • The study aims to explore the functionality of all-optical single-photon transistors in the continuous-wave regime using Rydberg atoms.
  • Analyzed all-optical implementations of single-photon transistors (SPTs).
  • Evaluated Rydberg atom ensembles interacting through van der Waals forces.
  • Characterized devices based on control-photon absorption and probe gain via simulations in one- and three-dimensional setups.
  • Demonstrated that a single control photon can suppress probe transmission by disturbing the electromagnetically induced transparency (EIT).
  • Identified two distinct probe-induced dephasing mechanisms that enhance device efficiency.
  • Showed extended lifetimes and localization of control excitations in the atomic ensemble.

Abstract

We analyze several implementations of all-optical single-photon transistors (SPTs) operating in the continuous-wave (cw) regime, as presented in the companion paper Phys. Rev. A 113, L011701 (2026). The devices rely on ensembles of Rydberg atoms interacting via van der Waals interactions. Under electromagnetically induced transparency (EIT), a weak probe field is fully transmitted through the atomic ensemble in the absence of control photons. Exciting a collective Rydberg state with a single control photon breaks the EIT condition, thereby strongly suppressing the probe transmission. We show how collective Rydberg interactions in an atomic ensemble, confined either in an optical cavity or in free space, give rise to two distinct probe-induced dephasing mechanisms. These processes localize the control excitations, extend their lifetimes, and increase the device efficiency. We characterize the SPTs in terms of control-photon absorption probability and probe gain, supported by numerical simulations of realistic one- and three-dimensional ensembles. The proposed cw devices complement previously demonstrated SPTs and broaden the toolbox of quantum light manipulation circuitry.

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Cite This Study

Tsiamis et al. (2026) studied this question.

synapsesocial.com/papers/698828770fc35cd7a8847f93https://doi.org/10.17169/refubium-51157
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