Fast optoelectronic charge state conversion of silicon vacancies in diamond.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 38381816.
- Also identified by DOI 10.1126/sciadv.adl4265 and PMC identifier 10881026.
- Licence recorded as CC BY-NC.
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Abstract
Group IV vacancy color centers in diamond are promising spin-photon interfaces with strong potential for applications in photonic quantum technologies. Reliable methods for controlling and stabilizing their charge state are urgently needed for scaling to multiqubit devices. Here, we manipulate the charge state of silicon vacancy (SiV) ensembles by combining luminescence and photocurrent spectroscopy. We controllably convert the charge state between the optically active SiV<sup>-</sup> and dark SiV<sup>2-</sup> with megahertz rates and >90% contrast by judiciously choosing the local potential applied to in-plane surface electrodes and the laser excitation wavelength. We observe intense SiV<sup>-</sup> photoluminescence under hole capture, measure the intrinsic conversion time from the dark SiV<sup>2-</sup> to the bright SiV<sup>-</sup> to be 36.4(67) ms, and demonstrate how it can be enhanced by a factor of 10<sup>5</sup> via optical pumping. Moreover, we obtain previously unknown information on the defects that contribute to photoconductivity, indicating the presence of substitutional nitrogen and divacancies.