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      Spin-photon entanglement interfaces in silicon carbide defect centers

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          Abstract

          Optically active spins in solid-state systems can be engineered to emit photons that are entangled with the spin in the solid. This allows for applications such as quantum communications, quantum key distribution, and distributed quantum computing. Recently, there has been a strong interest in silicon carbide defects, as they emit very close to the telecommunication wavelength, making them excellent candidates for long range quantum communications. In this work we develop explicit schemes for spin-photon entanglement in several SiC defects: the silicon monovacancy, the silicon divacancy, and the NV center in SiC. Distinct approaches are given for (i) single-photon and spin entanglement and (ii) the generation of long strings of entangled photons. The latter are known as cluster states and comprise a resource for measurement-based quantum information processing.

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          Author and article information

          Journal
          2016-08-11
          Article
          1608.03498
          602da906-c5f7-4bbe-b0f1-448837617dc5

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

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          Custom metadata
          cond-mat.mes-hall quant-ph

          Quantum physics & Field theory,Nanophysics
          Quantum physics & Field theory, Nanophysics

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