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      Silicon vacancy center in 4H-SiC: Electronic structure and spin-photon interfaces

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          Abstract

          Defects in silicon carbide are of intense and increasing interest for quantum-based applications due to this material's properties and technological maturity. We calculate the multi-particle symmetry adapted wave functions of the negatively charged silicon vacancy defect in hexagonal silicon carbide via use of group theory and density functional theory and find the effects of spin-orbit and spin-spin interactions on these states. Although we focused on \(\textrm{V}_{\textrm{Si}}^-\) in 4H-SiC, because of its unique fine structure due to odd number of active electrons, our methods can be easily applied to other defect centers of different polytpes, especially to the 6H-SiC. Based on these results we identify the mechanism that polarizes the spin under optical drive, obtain the ordering of its dark doublet states, point out a path for electric field or strain sensing, and find the theoretical value of its ground-state zero field splitting to be 68 MHz, in good agreement with experiment. Moreover, we present two distinct protocols of a spin-photon interface based on this defect. Our results pave the way toward novel quantum information and quantum metrology applications with silicon carbide.

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          Author and article information

          Journal
          2015-07-17
          2016-02-03
          Article
          10.1103/PhysRevB.93.081207
          1507.05091
          f1aa116d-3bf0-439c-bb71-5b8ddc5d8be1

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          Phys. Rev. B 93, 081207 (2016)
          6 pages, 4 figures, 1 Table, Supplementary
          cond-mat.mes-hall

          Nanophysics
          Nanophysics

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