English

Quantum information of optical magnetometry: Semiclassical Cramer-Rao bound violation and Heisenberg scaling

Quantum Physics 2026-01-06 v1

Abstract

Optical magnetometers use the rotation of linearly polarized laser light induced by the Faraday effect for high precision magnetic field measurements. Here, we carry out an in-depth quantum information investigation, deploying two distinct models: The first, semiclassical model can violate the quantum Cramer-Rao bound by several orders of magnitude for weak dissipation and large atom numbers, invalidating the semiclassical approach in this parameter regime. The second model, describing the atoms as a collective spin, respects the Cramer-Rao bound for all parameters. Interestingly, the collective model also predicts Heisenberg scaling for the quantum Fisher information. The comparison of both models shows that Heisenberg scaling is a result of measurement-induced quantum correlation in an otherwise non-interacting quantum system. As the Heisenberg scaling appears in a stationary state of a macroscopic quantum system, it can be thus viewed as a new paradigm in quantum sensing. Intriguingly, the comparison of both models with experimental data can constitute a test for the foundations of quantum mechanics in a macroscopic ensemble of atoms.

Keywords

Cite

@article{arxiv.2601.01820,
  title  = {Quantum information of optical magnetometry: Semiclassical Cramer-Rao bound violation and Heisenberg scaling},
  author = {Georg Engelhardt and Ming Li and Xingchang Wang and JunYan Luo and J. F. Chen},
  journal= {arXiv preprint arXiv:2601.01820},
  year   = {2026}
}

Comments

28 pages including appendices; 5 figures; comments are welcome