English

Spin relaxometry of single nitrogen-vacancy defects in diamond nanocrystals for magnetic noise sensing

Mesoscale and Nanoscale Physics 2015-06-15 v1

Abstract

We report an experimental study of the longitudinal relaxation time (T1T_1) of the electron spin associated with single nitrogen-vacancy (NV) defects hosted in nanodiamonds (ND). We first show that T1T_1 decreases over three orders of magnitude when the ND size is reduced from 100 to 10 nm owing to the interaction of the NV electron spin with a bath of paramagnetic centers lying on the ND surface. We next tune the magnetic environment by decorating the ND surface with Gd3+^{3+} ions and observe an efficient T1T_{1}-quenching, which demonstrates magnetic noise sensing with a single electron spin. We estimate a sensitivity down to 14\approx 14 electron spins detected within 10 s, using a single NV defect hosted in a 10-nm-size ND. These results pave the way towards T1T_1-based nanoscale imaging of the spin density in biological samples.

Keywords

Cite

@article{arxiv.1304.1197,
  title  = {Spin relaxometry of single nitrogen-vacancy defects in diamond nanocrystals for magnetic noise sensing},
  author = {J. -P. Tetienne and T. Hingant and L. Rondin and A. Cavailles and L. Mayer and G. Dantelle and T. Gacoin and J. Wrachtrup and J. -F. Roch and V. Jacques},
  journal= {arXiv preprint arXiv:1304.1197},
  year   = {2015}
}

Comments

Main text with 4 figures together with supplemental information