TY - JOUR
T1 - High-sensitivity magnetometry based on quantum beats in diamond nitrogen-vacancy centers
AU - Fang, Kejie
AU - Acosta, Victor M.
AU - Santori, Charles
AU - Huang, Zhihong
AU - Itoh, Kohei M.
AU - Watanabe, Hideyuki
AU - Shikata, Shinichi
AU - Beausoleil, Raymond G.
PY - 2013/3/26
Y1 - 2013/3/26
N2 - We demonstrate an absolute magnetometer based on quantum beats in the ground state of nitrogen-vacancy centers in diamond. We show that, by eliminating the dependence of spin evolution on the zero-field splitting D, the magnetometer is immune to temperature fluctuation and strain inhomogeneity. We apply this technique to measure low-frequency magnetic field noise by using a single nitrogen-vacancy center located within 500 nm of the surface of an isotopically pure (99.99% C12) diamond. The photon-shot-noise limited sensitivity achieves 38 nT/√Hz for 4.45 s acquisition time, a factor of √2 better than the implementation which uses only two spin levels. For long acquisition times (>10 s), we realize up to a factor of 15 improvement in magnetic sensitivity, which demonstrates the robustness of our technique against thermal drifts. Applying our technique to nitrogen-vacancy center ensembles, we eliminate dephasing from longitudinal strain inhomogeneity, resulting in a factor of 2.3 improvement in sensitivity.
AB - We demonstrate an absolute magnetometer based on quantum beats in the ground state of nitrogen-vacancy centers in diamond. We show that, by eliminating the dependence of spin evolution on the zero-field splitting D, the magnetometer is immune to temperature fluctuation and strain inhomogeneity. We apply this technique to measure low-frequency magnetic field noise by using a single nitrogen-vacancy center located within 500 nm of the surface of an isotopically pure (99.99% C12) diamond. The photon-shot-noise limited sensitivity achieves 38 nT/√Hz for 4.45 s acquisition time, a factor of √2 better than the implementation which uses only two spin levels. For long acquisition times (>10 s), we realize up to a factor of 15 improvement in magnetic sensitivity, which demonstrates the robustness of our technique against thermal drifts. Applying our technique to nitrogen-vacancy center ensembles, we eliminate dephasing from longitudinal strain inhomogeneity, resulting in a factor of 2.3 improvement in sensitivity.
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U2 - 10.1103/PhysRevLett.110.130802
DO - 10.1103/PhysRevLett.110.130802
M3 - Article
AN - SCOPUS:84875723956
SN - 0031-9007
VL - 110
JO - Physical Review Letters
JF - Physical Review Letters
IS - 13
M1 - 130802
ER -