Spin-controlled generation of indistinguishable and distinguishable photons from silicon vacancy centres in silicon carbide
Abstract
Quantum systems combining indistinguishable photon generation and spin-based quantum information processing are essential for remote quantum applications and networking. However, identification of suitable systems in scalable platforms remains a challenge. Here, we investigate the silicon vacancy centre in silicon carbide and demonstrate controlled emission of indistinguishable and distinguishable photons via coherent spin manipulation. Using strong off-resonant excitation and collecting zero-phonon line photons, we show a two-photon interference contrast close to 90% in Hong-Ou-Mandel type experiments. Further, we exploit the system's intimate spin-photon relation to spin-control the colour and indistinguishability of consecutively emitted photons. Our results provide a deep insight into the system's spin-phonon-photon physics and underline the potential of the industrially compatible silicon carbide platform for measurement-based entanglement distribution and photonic cluster state generation. Additional coupling to quantum registers based on individual nuclear spins would further allow for high-level network-relevant quantum information processing, such as error correction and entanglement purification.
- Publication:
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Nature Communications
- Pub Date:
- May 2020
- DOI:
- 10.1038/s41467-020-16330-5
- arXiv:
- arXiv:2001.02455
- Bibcode:
- 2020NatCo..11.2516M
- Keywords:
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- Quantum Physics
- E-Print:
- Manuscript and Methods: 21 pages, 4 figures Supplementary Information: 18 pages, 6 figures, 1 table