pith. sign in

Ultralight dark matter detection with trapped-ion interferometry

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

We explore how recent advances in the manipulation of single-ion wave packets open new avenues for detecting weak magnetic fields sourced by ultralight dark matter. A trapped ion in a ``Schr\"odinger cat'' state can be prepared with its spin and motional degrees of freedom entangled and be used as a matter-wave interferometer that is sensitive to the Aharonov-Bohm-like phase shift accumulated by the ion over its trajectory. The result of the spin-motion entanglement is a parametrically-enhanced sensitivity to weak magnetic fields as compared with an un-entangled ion in a trap. Taking into account the relevant boundary conditions, we demonstrate that a single trapped ion can probe unexplored regions of kinetically-mixed dark-photon dark matter parameter space in the $10^{-15}~\text{eV} \lesssim m_{A'} \lesssim 10^{-14}$~eV mass window. We also show how such a table-top quantum device will also serve as a complementary probe of axion-like particle dark matter in the same mass window.

citation-role summary

background 2

citation-polarity summary

fields

hep-ph 2

years

2026 2

verdicts

UNVERDICTED 2

roles

background 2

polarities

background 2

representative citing papers

Searching for axions with quantum interferometry

hep-ph · 2026-04-14 · unverdicted · novelty 6.0

Axion-photon coupling imprints measurable Aharonov-Bohm and Berry phases in superconducting circuits and interferometers, projecting sensitivity to g_aγγ ~ 7.8e-14 GeV^{-1} at m_a ~ 1e-10 eV.

citing papers explorer

Showing 2 of 2 citing papers.

  • Searching for axions with quantum interferometry hep-ph · 2026-04-14 · unverdicted · none · ref 45 · internal anchor

    Axion-photon coupling imprints measurable Aharonov-Bohm and Berry phases in superconducting circuits and interferometers, projecting sensitivity to g_aγγ ~ 7.8e-14 GeV^{-1} at m_a ~ 1e-10 eV.

  • Super-Heisenberg protocol for dark matter and high-frequency gravitational wave search hep-ph · 2026-04-24 · unverdicted · none · ref 23 · internal anchor

    A protocol using squeezed states in 2D ion crystals in a Penning trap achieves super-Heisenberg sensitivity for axion-like particles, dark photons, and high-frequency gravitational waves while accounting for decoherence.