English

Broadband loop gap resonator for nitrogen vacancy centers in diamond

Applied Physics 2018-09-26 v1

Abstract

We present an S-band tunable loop gap resonator (LGR) providing strong, homogeneous, and directionally uniform broadband microwave (MW) drive for nitrogen-vacancy (NV) ensembles. With 42 dBm of input power, the composite device provides drive field amplitudes approaching 5 G over a circular area  ⁣50\gtrsim\!50 mm2^2 or cylindrical volume  ⁣250\gtrsim\!250 mm3^3. The wide 80 MHz device bandwidth allows driving all eight NV Zeeman resonances for bias magnetic fields below 20 G. For pulsed applications the device realizes percent-scale microwave drive inhomogeneity; we measure a fractional root-mean-square inhomogeneity σrms ⁣= ⁣1.6%\sigma_\text{rms}\!=\! 1.6\% and a peak-to-peak variation σpp ⁣= ⁣3%\sigma_\text{pp}\!=\! 3\% over a circular area of 11 mm2^2, and σrms ⁣= ⁣3.2%\sigma_\text{rms} \!=\! 3.2\% and σpp ⁣= ⁣10.5%\sigma_\text{pp}\! =\! 10.5\% over a larger 32 mm2^2 circular area. We demonstrate incident MW power coupling to the LGR using multiple methodologies: a PCB-fabricated exciter antenna for deployed compact bulk sensors and an inductive coupling coil suitable for microscope-style imaging. The inductive coupling coil allows for approximately 2π2\pi steradian combined optical access above and below the device, ideal for envisioned and existing NV imaging and bulk sensing applications.

Keywords

Cite

@article{arxiv.1804.09763,
  title  = {Broadband loop gap resonator for nitrogen vacancy centers in diamond},
  author = {Erik Eisenach and John Barry and Roberto Rojas and Linh M. Pham and Dirk R. Englund and Danielle Braje},
  journal= {arXiv preprint arXiv:1804.09763},
  year   = {2018}
}

Comments

8 pages, 8 figures

R2 v1 2026-06-23T01:35:58.941Z