English

Zero- to low-field J-spectroscopy with a diamond magnetometer

Applied Physics 2026-01-27 v3

Abstract

We report measurements of zero- to ultra-low-field nuclear magnetic resonance (ZULF NMR) signals at frequencies of a few hertz with a diamond-based magnetic sensor. The sensing diamond is a truncated pyramid with 0.18 mm height and a 0.5 mm x 0.5mm base. The minimum stand-off distance is < 1 mm, and the sensor sensitivity is 13 pT/(Hz)^(1/2) at frequencies f above 5 Hz with 1/f-like behavior at lower frequencies. NMR signals were generated via signal amplification by reversible exchange (SABRE) parahydrogen-based hyperpolarization resulting in zero-field signals at 1.7 Hz and 3.4 Hz corresponding to the expected hetero-nuclear J-coupling pattern of acetonitrile. This work demonstrates a magnet-free platform for detecting chemically specific NMR signals at ultra-low frequencies paving the way for portable noninvasive diagnostics in microscopic sample volumes for biomedicine, industrial sensing through metal enclosures, and field-deployable quantum analytical devices.

Cite

@article{arxiv.2512.05776,
  title  = {Zero- to low-field J-spectroscopy with a diamond magnetometer},
  author = {Muhib Omar and Jingyan Xu and Raphael Kircher and Pouya Sharbati and Shaowen Zhang and Georgios Chatzidrosos and James Eills and Roman Picazo-Frutos and Dmitry Budker and Danila A. Barskiy and Arne Wickenbrock},
  journal= {arXiv preprint arXiv:2512.05776},
  year   = {2026}
}
R2 v1 2026-07-01T08:11:39.221Z