English

Nuclear-spin comagnetometer based on a liquid of identical molecules

Atomic Physics 2018-07-18 v1

Abstract

Atomic comagnetometers are used in searches for anomalous spin-dependent interactions. Magnetic field gradients are one of the major sources of systematic errors in such experiments. Here we describe a comagnetometer based on the nuclear spins within an ensemble of identical molecules. The dependence of the measured spin-precession frequency ratio on the first-order magnetic field gradient is suppressed by over an order of magnitude compared to a comagnetometer based on overlapping ensembles of different molecules. Our single-species comagnetometer is shown to be capable of measuring the hypothetical spin-dependent gravitational energy of nuclei at the 101710^{-17} eV level, comparable to the most stringent existing constraints. Combined with techniques for enhancing the signal such as parahydrogen-induced polarization, this method of comagnetometry offers the potential to improve constraints on spin-gravity coupling of nucleons by several orders of magnitude.

Keywords

Cite

@article{arxiv.1804.02096,
  title  = {Nuclear-spin comagnetometer based on a liquid of identical molecules},
  author = {Teng Wu and John W. Blanchard and Derek F. Jackson Kimball and Min Jiang and Dmitry Budker},
  journal= {arXiv preprint arXiv:1804.02096},
  year   = {2018}
}

Comments

8 pages, 4 figures

R2 v1 2026-06-23T01:15:35.894Z