High-fidelity spin and optical control of single silicon-vacancy centres in silicon carbide

Authors
Nagy, RolandNiethammer, MatthiasWidmann, MatthiasChen, Yu-ChenUdvarhelyi, PeterBonato, CristianHassan, Jawad UiKarhu, RobinIvanov, Ivan G.Nguyen Tien SonMaze, Jeronimo R.Ohshima, TakeshiSoykal, Oney O.Gali, AdamLee, Sang-YunKaiser, FlorianWrachtrup, Joerg
Issue Date
2019-04
Publisher
Nature Publishing Group
Citation
Nature Communications, v.10
Abstract
Scalable quantum networking requires quantum systems with quantum processing capabilities. Solid state spin systems with reliable spin-optical interfaces are a leading hardware in this regard. However, available systems suffer from large electron-phonon interaction or fast spin dephasing. Here, we demonstrate that the negatively charged silicon-vacancy centre in silicon carbide is immune to both drawbacks. Thanks to its (4)A(2) symmetry in ground and excited states, optical resonances are stable with near-Fourier-transform-limited linewidths, allowing exploitation of the spin selectivity of the optical transitions. In combination with millisecond-long spin coherence times originating from the high-purity crystal, we demonstrate high-fidelity optical initialization and coherent spin control, which we exploit to show coherent coupling to single nuclear spins with similar to 1 kHz resolution. The summary of our findings makes this defect a prime candidate for realising memory-assisted quantum network applications using semiconductor-based spin-to-photon interfaces and coherently coupled nuclear spins.
Keywords
SOLID-STATE SPIN; NUCLEAR-MAGNETIC-RESONANCE; COHERENT CONTROL; QUANTUM; ENTANGLEMENT; SPECTROSCOPY; PHOTON; QUBITS; 6H; 4H
ISSN
2041-1723
URI
https://pubs.kist.re.kr/handle/201004/120182
DOI
10.1038/s41467-019-09873-9
Appears in Collections:
KIST Article > 2019
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