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Trapped Ion Quantum Computing
Multi-mode mediated exchange coupling in cavity QED
arXiv
Authors: S. Filipp, M. Göppl, J. M. Fink, M. Baur, R. Bianchetti, L. Steffen, A. Wallraff
Year
2010
Paper ID
10394
Status
Preprint
Abstract Read
~2 min
Abstract Words
108
Citations
N/A
Abstract
Microwave cavities with high quality factors enable coherent coupling of distant quantum systems. Virtual photons lead to a transverse exchange interaction between qubits, when they are non-resonant with the cavity but resonant with each other. We experimentally probe the inverse scaling of the inter-qubit coupling with the detuning from a cavity mode and its proportionality to the qubit-cavity interaction strength. We demonstrate that the enhanced coupling at higher frequencies is mediated by multiple higher-harmonic cavity modes. Moreover, in the case of resonant qubits, the symmetry properties of the system lead to an allowed two-photon transition to the doubly excited qubit state and the formation of a dark state.
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- This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
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- Microwave cavities with high quality factors enable coherent coupling of distant quantum systems.
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