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Inverted fine structure of a 6H-SiC qubit enabling robust spin-photon interface

Controllable solid-state spin qubits are currently becoming useful building blocks for applied quantum technologies. Here, we demonstrate that in a specific type of silicon-vacancy in the 6H-SiC polytype the excited-state fine structure is inverted, compared to 4H-SiC. From the angular polarization...

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Bibliographic Details
Published in:npj quantum information 2022-03, Vol.8 (1), p.1-9, Article 23
Main Authors: Breev, I. D., Shang, Z., Poshakinskiy, A. V., Singh, H., Berencén, Y., Hollenbach, M., Nagalyuk, S. S., Mokhov, E. N., Babunts, R. A., Baranov, P. G., Suter, D., Tarasenko, S. A., Astakhov, G. V., Anisimov, A. N.
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Language:English
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Summary:Controllable solid-state spin qubits are currently becoming useful building blocks for applied quantum technologies. Here, we demonstrate that in a specific type of silicon-vacancy in the 6H-SiC polytype the excited-state fine structure is inverted, compared to 4H-SiC. From the angular polarization dependencies of the emission, we reconstruct the spatial symmetry and determine the optical selection rules depending on the local deformation and spin–orbit interaction. We show that this system is well suited for the implementation of robust spin–photon entanglement schemes. Furthermore, the inverted fine structure leads to unexpected behavior of the spin readout contrast. It vanishes and recovers with lattice cooling due to two competing optical spin pumping mechanisms. Our experimental and theoretical approaches provide a deep insight into the optical and spin properties of atomic-scale qubits in SiC required for quantum communication and distributed quantum information processing.
ISSN:2056-6387
2056-6387
DOI:10.1038/s41534-022-00534-2