English

Photoluminescence decomposition analysis: a technique to characterize NV creation in diamond

Mesoscale and Nanoscale Physics 2019-10-09 v1 Quantum Physics

Abstract

Treatment of lab-grown diamond by electron irradiation and annealing has enabled quantum sensors based on negatively-charged nitrogen-vacancy (NV-^\text{-}) centers to demonstrate record sensitivities. \cite{Clevenson2015,Wolf2015,Barry2016,Chatzidrosos2017}. Here we investigate the irradiation and annealing process applied to 28 diamond samples using a new ambient-temperature, all-optical approach. As the presence of the neutrally-charged nitrogen-vacancy (NV0^\text{0}) center is deleterious to sensor performance, this photoluminescence decomposition analysis (PDA) is first employed to determine the concentration ratio of NV-^\text{-} to NV0^0 in diamond samples from the measured photoluminescence spectrum. The analysis hinges on (i) isolating each NV charge state's emission spectrum and (ii) measuring the NV-^\text{-} to NV0^0 emission ratio, which is found to be 2.5±\pm0.5 under low-intensity 532 nm illumination. Using the PDA method, we measure the effects of irradiation and annealing on conversion of substitutional nitrogen to NV centers. Combining these measurements with a phenomenological model for diamond irradiation and annealing, we extract an estimated monovacancy creation rate of 0.52±0.260.52\pm 0.26 cm-1^{\text{-1}} for 1 MeV electron irradiation and an estimated monovacancy diffusion coefficient of 1.8 nm2^2/s at 850~^\circC. Finally we find that irradiation doses 1018\gtrsim 10^{18} e-^\text{-}/cm2^2 deteriorate the NV-^\text{-} decoherence time T2T_2 whereas T1T_1 is unaffected up to the the maximum investigated dose of 5×10185\times 10^{18} e-^\text{-}/cm2^2.

Keywords

Cite

@article{arxiv.1906.11406,
  title  = {Photoluminescence decomposition analysis: a technique to characterize NV creation in diamond},
  author = {Scott Alsid and John Barry and Linh Pham and Jennifer Schloss and Michael O'Keefe and Paola Cappellaro and Danielle Braje},
  journal= {arXiv preprint arXiv:1906.11406},
  year   = {2019}
}

Comments

19 pages, 10 figures