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The dark Stodolsky effect: constraining effective dark matter operators with spin-dependent interactions

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arxiv 2304.06750 v2 pith:7HTW5EKO submitted 2023-04-13 hep-ph hep-ex

The dark Stodolsky effect: constraining effective dark matter operators with spin-dependent interactions

classification hep-ph hep-ex
keywords effectenergyshiftsstodolskydarkeffectivebackgroundconstrain
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We present a comprehensive discussion of the Stodolsky effect for dark matter (DM), and discuss two techniques to measure the effect and constrain the DM parameter space. The Stodolsky effect is the spin-dependent shift in the energy of a Standard Model (SM) fermion sitting in a bath of neutrinos. This effect, which scales linearly in the effective coupling, manifests as a small torque on the SM fermion spin and has historically been proposed as a method of detecting the cosmic neutrino background. We generalise this effect to DM, and give expressions for the induced energy shifts for DM candidates from spin-$0$ to spin-$\frac 32$, considering all effective operators up to mass dimension-6. In all cases, the effect scales inversely with the DM mass, but requires an asymmetric background. We show that a torsion balance experiment is sensitive to energy shifts of $\Delta E \gtrsim 10^{-28}\,\mathrm{eV}$, whilst a more intricate setup using a SQUID magnetometer is sensitive to shifts of $\Delta E \gtrsim 10^{-32}\,\mathrm{eV}$. Finally, we compute the energy shifts for a model of scalar DM, and demonstrate that the Stodolsky effect can be used to constrain regions of parameter space that are not presently excluded.

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Cited by 1 Pith paper

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  1. Detection prospects for the Cosmic Neutrino Background using matter interferometers

    hep-ph 2025-11 conditional novelty 6.0

    The Cosmic Neutrino Background is predicted to induce phase shifts of ~1e-22 to 1e-14 rad in matter interferometers, far below current and near-future sensitivity.