English
 
Help Privacy Policy Disclaimer
  Advanced SearchBrowse

Item

ITEM ACTIONSEXPORT

Released

Journal Article

Dynamical sensitivity control of a single-spin quantum sensor.

MPS-Authors
/persons/resource/persons134490

Lazariev,  A.
Research Group of Nanoscale Spin Imaging, MPI for Biophysical Chemistry, Max Planck Society;

/persons/resource/persons119008

Arroyo Camejo,  S.
Department of NanoBiophotonics, MPI for Biophysical Chemistry, Max Planck Society;

Rahane,  G.
Research Group of Nanoscale Spin Imaging, MPI for Biophysical Chemistry, Max Planck Society;

Kavatamane,  V. K.
Research Group of Nanoscale Spin Imaging, MPI for Biophysical Chemistry, Max Planck Society;

/persons/resource/persons32780

Balasubramanian,  G.
Research Group of Nanoscale Spin Imaging, MPI for Biophysical Chemistry, Max Planck Society;

External Resource
No external resources are shared
Fulltext (restricted access)
There are currently no full texts shared for your IP range.
Fulltext (public)

2468236.pdf
(Publisher version), 3MB

Supplementary Material (public)

2468236_Suppl.pdf
(Supplementary material), 2MB

Citation

Lazariev, A., Arroyo Camejo, S., Rahane, G., Kavatamane, V. K., & Balasubramanian, G. (2017). Dynamical sensitivity control of a single-spin quantum sensor. Scientific Reports, 7: 6586. doi:10.1038/s41598-017-05387-w.


Cite as: https://hdl.handle.net/11858/00-001M-0000-002D-B019-5
Abstract
The Nitrogen-Vacancy (NV) defect in diamond is a unique quantum system that offers precision sensing of nanoscale physical quantities at room temperature beyond the current state-of-the-art. The benchmark parameters for nanoscale magnetometry applications are sensitivity, spectral resolution, and dynamic range. Under realistic conditions the NV sensors controlled by conventional sensing schemes suffer from limitations of these parameters. Here we experimentally show a new method called dynamical sensitivity control (DYSCO) that boost the benchmark parameters and thus extends the practical applicability of the NV spin for nanoscale sensing. In contrast to conventional dynamical decoupling schemes, where π pulse trains toggle the spin precession abruptly, the DYSCO method allows for a smooth, analog modulation of the quantum probe's sensitivity. Our method decouples frequency selectivity and spectral resolution unconstrained over the bandwidth (1.85 MHz-392 Hz in our experiments). Using DYSCO we demonstrate high-accuracy NV magnetometry without |2π| ambiguities, an enhancement of the dynamic range by a factor of 4 · 103, and interrogation times exceeding 2 ms in off-the-shelf diamond. In a broader perspective the DYSCO method provides a handle on the inherent dynamics of quantum systems offering decisive advantages for NV centre based applications notably in quantum information and single molecule NMR/MRI.