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Trapped Ion Quantum Computing
Interfacing a quantum dot spin with a photonic circuit
arXiv
Authors: Isaac J. Luxmoore, Nicholas A. Wasley, Andrew J. Ramsay, Arthur C. T. Thijssen, Ruth Oulton, Maxime Hugues, Sachin Kasture, Achanta V. Gopal, A. Mark Fox, Maurice S. Skolnick
Year
2012
Paper ID
8606
Status
Preprint
Abstract Read
~2 min
Abstract Words
152
Citations
N/A
Abstract
A scalable optical quantum information processor is likely to be a waveguide circuit with integrated sources, detectors, and either deterministic quantum-logic or quantum memory elements. With microsecond coherence times, ultrafast coherent control, and lifetime-limited transitions, semiconductor quantum-dot spins are a natural choice for the static qubits. However their integration with flying photonic qubits requires an on-chip spin-photon interface, which presents a fundamental problem: the spin-state is measured and controlled via circularly-polarised photons, but waveguides support only linear polarisation. We demonstrate here a solution based on two orthogonal photonic nanowires, in which the spin-state is mapped to a path-encoded photon, thus providing a blue-print for a scalable spin-photon network. Furthermore, for some devices we observe that the circular polarisation state is directly mapped to orthogonal nanowires. This result, which is physically surprising for a non-chiral structure, is shown to be related to the nano-positioning of the quantum-dot with respect to the photonic circuit.
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- This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
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- A scalable optical quantum information processor is likely to be a waveguide circuit with integrated sources, detectors, and either deterministic quantum-logic or quantum...
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