quantum physics

Axion like particles multi-parameter sensing

arXiv:2607.12164

summary

The paper proposes a quantum metrology setup using position‑dependent spin sensors and a multi‑probe strategy to simultaneously estimate axion‑like particle masses and coupling constants, achieving high sensitivity for masses ≤ 10⁻³ eV.

Abstract

The search for the axion like particles (APLs)-one of the deepest puzzles in modern cosmology-may hold the key to understanding dark matter and dark energy. In this work, we introduce a setup taking advantage of the quantum metrology techniques to constrain the hypothetical mass and coupling constants of APLs by employing exotic pseudoscalar spin-spin interactions between fermions mediated by ALPs. A key advantage of our approach is the exploitation of position-dependent spin sensor results to the high sensitivity of the probe. To simultaneously investigate the axion mass and coupling constants, we invoke a multi-probe detection strategy. Through this strategy, we circumvent the singularity of the quantum Fisher information matrix as an ultimate upper bound on the sensitivity of any probe. For the axion masses in the range of , this setup can exclude values of axion coupling constants down to .

Topics & keywords

#axion-like particles#quantum metrology#spin sensors#multi-parameter estimation#dark matteraxion masscoupling constant g_e^p g_n^pquantum Fisher informationpseudoscalar spin-spin interactionmulti-probe detection
Axion like particles multi-parameter sensing · wovepaper