English

Coherent control of a symmetry-engineered multi-qubit dark state in waveguide quantum electrodynamics

Quantum Physics 2022-03-22 v1 Atomic Physics Optics

Abstract

Quantum information is typically encoded in the state of a qubit that is decoupled from the environment. In contrast, waveguide quantum electrodynamics studies qubits coupled to a mode continuum, exposing them to a loss channel and causing quantum information to be lost before coherent operations can be performed. Here we restore coherence by realizing a dark state that exploits symmetry properties and interactions between four qubits. Dark states decouple from the waveguide and are thus a valuable resource for quantum information but also come with a challenge: they cannot be controlled by the waveguide drive. We overcome this problem by designing a drive that utilizes the symmetry properties of the collective state manifold allowing us to selectively drive both bright and dark states. The decay time of the dark state exceeds that of the waveguide-limited single qubit by more than two orders of magnitude. Spectroscopy on the second excitation manifold provides further insight into the level structure of the hybridized system. Our experiment paves the way for implementations of quantum many-body physics in waveguides and the realization of quantum information protocols using decoherence-free subspaces.

Keywords

Cite

@article{arxiv.2106.05623,
  title  = {Coherent control of a symmetry-engineered multi-qubit dark state in waveguide quantum electrodynamics},
  author = {Maximilian Zanner and Tuure Orell and Christian M. F. Schneider and Romain Albert and Stefan Oleschko and Mathieu L. Juan and Matti Silveri and Gerhard Kirchmair},
  journal= {arXiv preprint arXiv:2106.05623},
  year   = {2022}
}

Comments

main paper: 8 pages, 4 figures supplementary material: 10 pages, 7 figures, 1 table

R2 v1 2026-06-24T03:02:58.551Z