English

Magnetometry via spin-mechanical coupling in levitated optomechanics

Quantum Physics 2017-08-09 v3

Abstract

We analyze magnetometry using an optically levitated nanodiamond. We consider a configuration where a magnetic field gradient couples the mechanical oscillation of the diamond with its spin degree of freedom provided by a Nitrogen vacancy center. First, we investigate measurement of the position spectrum of the mechanical oscillator. We find that conditions of ultrahigh vacuum and feedback cooling allow a magnetic field gradient sensitivity of 1 μ\muTm1^{-1}/\mboxHz\sqrt{\mbox{Hz}}. At high pressure and room temperature, this sensitivity degrades and can attain a value of the order of 100 mmTm1^{-1}/\mboxHz\sqrt{\mbox{Hz}}. Subsequently, we characterize the magnetic field gradient sensitivity obtainable by maneuvering the spin degrees of freedom using Ramsey interferometry. We find that this technique can offer photon-shot noise and spin-projection noise limited magnetic field gradient sensitivity of 100 μ\muTm1^{-1}/\mboxHz\sqrt{\mbox{Hz}}. We conclude that this hybrid levitated nanomechanical magnetometer provides a favorable and versatile platform for sensing applications.

Keywords

Cite

@article{arxiv.1705.07453,
  title  = {Magnetometry via spin-mechanical coupling in levitated optomechanics},
  author = {Pardeep Kumar and M. Bhattacharya},
  journal= {arXiv preprint arXiv:1705.07453},
  year   = {2017}
}
R2 v1 2026-06-22T19:53:52.277Z