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Electrically driven optical interferometry with spins in silicon carbide

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arxiv 1905.12780 v1 pith:UJPCIUOJ submitted 2019-05-29 quant-ph cond-mat.mes-hallcond-mat.mtrl-sci

classification quant-phcond-mat.mes-hallcond-mat.mtrl-sci
keywords opticalfieldsquantumspincarbidecoherentcouplingdivacancies
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Interfacing solid-state defect electron spins to other quantum systems is an ongoing challenge. The ground-state spin's weak coupling to its environment bestows excellent coherence properties, but also limits desired drive fields. The excited-state orbitals of these electrons, however, can exhibit stronger coupling to phononic and electric fields. Here, we demonstrate electrically driven coherent quantum interference in the optical transition of single, basally oriented divacancies in commercially available 4H silicon carbide. By applying microwave frequency electric fields, we coherently drive the divacancy's excited-state orbitals and induce Landau-Zener-Stuckelberg interference fringes in the resonant optical absorption spectrum. Additionally, we find remarkably coherent optical and spin subsystems enabled by the basal divacancy's symmetry. These properties establish divacancies as strong candidates for quantum communication and hybrid system applications, where simultaneous control over optical and spin degrees of freedom is paramount.

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