Optical activation and detection of charge transport between individual colour centres in diamond

Artur Lozovoi, Harishankar Jayakumar, Damon Daw, Gyorgy Vizkelethy, Edward Bielejec, Marcus W. Doherty, Johannes Flick, Carlos A. Meriles*

*Corresponding author for this work

    Research output: Contribution to journalArticlepeer-review

    33 Citations (Scopus)

    Abstract

    Understanding the capture of charge carriers by colour centres in semiconductors is important for the development of novel forms of sensing and quantum information processing, but experiments typically involve ensemble measurements, often impacted by defect proximity. Here we show that confocal fluorescence microscopy and magnetic resonance can be used to induce and probe charge transport between individual nitrogen-vacancy centres in diamond at room temperature. In our experiments, a ‘source’ nitrogen vacancy undergoes optically driven cycles of ionization and recombination to produce a stream of photogenerated carriers, one of which is subsequently captured by a ‘target’ nitrogen vacancy several micrometres away. We use a spin-to-charge conversion scheme to encode the spin state of the source colour centre into the charge state of the target, which allows us to set an upper bound to carrier injection from other background defects. We attribute our observations to the action of unscreened Coulomb potentials producing giant carrier capture cross-sections, orders of magnitude greater than those measured in ensembles.

    Original languageEnglish
    Pages (from-to)717-724
    Number of pages8
    JournalNature Electronics
    Volume4
    Issue number10
    DOIs
    Publication statusPublished - Oct 2021

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