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    In: Journal of Physics D: Applied Physics, IOP Publishing, Vol. 56, No. 23 ( 2023-06-08), p. 235102-
    Abstract: Single-photon emitters based on intrinsic defects in silicon carbide (SiC) are promising as solid-state qubits for the quantum information storage, whereas defect engineering in a controllable manner still remains challenging. Herein, the thermally-driven defect dynamic reaction in the ion implanted 4H-SiC has been exploited through the optical emission spectra of defects. For the heavy-ion (Si or Ar) implanted samples with abundant Frenkel pairs, the silicon vacancies (V Si ) are energetically converted into the carbon antisite-vacancy pair (C Si -V C ) upon annealing till 1300 °C for 30 min, accompanied with the gradual lattice recovery and local strain relaxation. The further temperature elevation dissociates the metastable C Si -V C into carbon antisite (C Si ) and carbon vacancy (V C ), as supported by the consequent quenching of the (C Si -V C )-related emission at 700 nm. Thus, the whole defect reaction is probed as the vacancy interconversion from V Si to V C with the byproduct of stacking faults. In contrast, the intermediate C Si -V C complexes are not energetically favorable during the annealing of the H-implanted sample, which results from the negligible generation of Frenkel pairs, as supported by the x-ray diffraction patterns and Raman scattering analysis. These findings provide guidance for defect engineering in SiC toward the creation of reliable single photon emitters.
    Type of Medium: Online Resource
    ISSN: 0022-3727 , 1361-6463
    Language: Unknown
    Publisher: IOP Publishing
    Publication Date: 2023
    detail.hit.zdb_id: 209221-9
    detail.hit.zdb_id: 1472948-9
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