English

Gyroscopes based on nitrogen-vacancy centers in diamond

Atomic Physics 2013-05-30 v2

Abstract

We propose solid-state gyroscopes based on ensembles of negatively charged nitrogen-vacancy (NV{\rm NV^-}) centers in diamond. In one scheme, rotation of the nitrogen-vacancy symmetry axis will induce Berry phase shifts in the NV{\rm NV^{-}} electronic ground-state coherences proportional to the solid angle subtended by the symmetry axis. We estimate sensitivity in the range of 5×103rad/s/Hz5\times10^{-3} {\rm rad/s/\sqrt{Hz}} in a 1 mm3{\rm mm^3} sensor volume using a simple Ramsey sequence. Incorporating dynamical decoupling to suppress dipolar relaxation may yield sensitivity at the level of 105rad/s/Hz10^{-5} {\rm rad/s/\sqrt{Hz}}. With a modified Ramsey scheme, Berry phase shifts in the 14N{\rm ^{14}N} hyperfine sublevels would be employed. The projected sensitivity is in the range of 105rad/s/Hz10^{-5} {\rm rad/s/\sqrt{Hz}}, however the smaller gyromagnetic ratio reduces sensitivity to magnetic-field noise by several orders of magnitude. Reaching 105rad/s/Hz10^{-5} {\rm rad/s/\sqrt{Hz}} would represent an order of magnitude improvement over other compact, solid-state gyroscope technologies.

Keywords

Cite

@article{arxiv.1205.0093,
  title  = {Gyroscopes based on nitrogen-vacancy centers in diamond},
  author = {Micah Ledbetter and Kasper Jensen and Ran Fischer and Andrey Jarmola and Dmitry Budker},
  journal= {arXiv preprint arXiv:1205.0093},
  year   = {2013}
}

Comments

3 figures, 5 pages

R2 v1 2026-06-21T20:56:59.255Z