Wavelength dependence of nitrogen-vacancy center charge cycling
arXiv:2401.12668 · doi:10.1103/PhysRevB.109.134106
Abstract
Optically-active spin qubits in wide-bandgap semiconductors exist in several charge states, though typically only specific charge states exhibit desirable spin or photonic properties. An understanding of how interconversion between different charge states occurs is important for most applications seeking to employ such defects in quantum sensing and information processing, and additionally serves as a means of testing and verifying models of the defect electronic structure. Here, we use charge-sensitive confocal imaging to study the wavelength dependence of optical carrier generation in diamonds hosting nitrogen-vacancy (NV) centers, silicon vacancy (SiV) centers and substitutional nitrogen (N). We study the generation of distinctive charge-capture patterns formed when photogenerated charge carriers are captured by photoluminescent defects, using light spanning 405-633\,nm (1.96-3.06\,eV). We observe distinct regimes where one- or two-photon ionization or recombination processes dominate, and a third regime where anti-Stokes mediated recombination drives weak NV charge cycling with red light. We then compare red-induced charge cycling to fast charge carrier transport between isolated single NV centers driven with green and blue light. This work reports new optically-mediated charge cycling processes of the NV centers, and has consequences for schemes using charge transfer to identify non-luminescent defects and photoelectric detection, where ambiguity exists as to the source of photocurrent.
12 pages, 5 figures, comments welcome
References in corpus (15)
- Low Temperature Studies of Charge Dynamics of Nitrogen-Vacancy Defect in Diamond
- Efficient readout of a single spin state in diamond via spin-to-charge conversion
- Long-term data storage in diamond
- Nanoscale covariance magnetometry with diamond quantum sensors
- Coherence of a charge stabilised tin-vacancy spin in diamond
- Optical patterning of trapped charge in nitrogen-doped diamond
- Optical activation and detection of charge transport between individual color centers in room-temperature diamond
- Photoionization of negatively charged NV centers in diamond: theory and ab initio calculations
- Enhanced dual-beam excitation photoelectric detection of NV magnetic resonances in diamond
- Shallow Silicon Vacancy Centers with lifetime-limited optical linewidths in Diamond Nanostructures
- Probing metastable space-charge potentials in a wide bandgap semiconductor
- Room-temperature photo-chromism of silicon vacancy centers in CVD diamond
- Neutral Silicon Vacancy Centers in Diamond via Photoactivated Itinerant Carriers
- Detection and modeling of hole capture by single point defects under variable electric fields
- Dark defect charge dynamics in bulk chemical-vapor-deposition-grown diamonds probed via nitrogen vacancy centers
Cited by in corpus (4)
- Robust quantification of the diamond nitrogen-vacancy center charge state via photoluminescence spectroscopy
- Charge and Spin Dynamics and Destabilization of Shallow Nitrogen-Vacancy Centers under UV and Blue Excitation
- All-optical electric field sensing with nanodiamond-doped polymer thin films
- Optical Switching of in Diamond Photonics