English

Broadband Magnetometry and Temperature Sensing with a Light Trapping Diamond Waveguide

Quantum Physics 2015-05-20 v1 Mesoscale and Nanoscale Physics Optics

Abstract

Solid-state quantum sensors are attracting wide interest because of their exceptional sensitivity at room temperature. In particular, the spin properties of individual nitrogen vacancy (NV) color centers in diamond make it an outstanding nanoscale sensor of magnetic fields, electric fields, and temperature, under ambient conditions. Recent work on ensemble NV-based magnetometers, inertial sensors, and clocks have employed NN unentangled color centers to realize a factor of up to N\sqrt{N} improvement in sensitivity. However, to realize fully this signal enhancement, new techniques are required to excite efficiently and to collect fluorescence from large NV ensembles. Here, we introduce a light-trapping diamond waveguide (LTDW) geometry that enables both high fluorescence collection (20%\sim20\%) and efficient pump absorption achieving an effective path length exceeding 11 meter in a millimeter-sized device. The LTDW enables in excess of 2%2\% conversion efficiency of pump photons into optically detected magnetic resonance (ODMR) fluorescence, a \textit{three orders of magnitude} improvement over previous single-pass geometries. This dramatic enhancement of ODMR signal enables broadband measurements of magnetic field and temperature at less than 11 Hz, a frequency range inaccessible by dynamical decoupling techniques. We demonstrate 1 \mboxnT/\mboxHz\sim 1~\mbox{nT}/\sqrt{\mbox{Hz}} magnetic field sensitivity for 0.10.1 Hz to 1010 Hz and a thermal sensitivity of 400 μ\mboxK/\mboxHz\sim 400 ~\mu\mbox{K}/\sqrt{\mbox{Hz}} and estimate a spin projection limit at 0.36\sim 0.36 fT/\mboxHz\sqrt{\mbox{Hz}} and 139 \mboxpK/\mboxHz\sim 139~\mbox{pK}/\sqrt{\mbox{Hz}}, respectively.

Keywords

Cite

@article{arxiv.1406.5235,
  title  = {Broadband Magnetometry and Temperature Sensing with a Light Trapping Diamond Waveguide},
  author = {Hannah Clevenson and Matthew E. Trusheim and Tim Schroder and Carson Teale and Danielle Braje and Dirk Englund},
  journal= {arXiv preprint arXiv:1406.5235},
  year   = {2015}
}

Comments

8 pages, 5 figures

R2 v1 2026-06-22T04:42:52.926Z