Home > Research > Publications & Outputs > Dark matter attenuation effects

Electronic data

  • Earth_Shadowing-May

    Accepted author manuscript, 2.37 MB, PDF document

    Available under license: CC BY: Creative Commons Attribution 4.0 International License

Links

Text available via DOI:

View graph of relations

Dark matter attenuation effects: sensitivity ceilings for spin-dependent and spin-independent interactions

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Published

Standard

Dark matter attenuation effects: sensitivity ceilings for spin-dependent and spin-independent interactions. / The QUEST-DMC collaboration.
In: Journal of Cosmology and Astroparticle Physics, Vol. 2025, No. 4, 017, 30.04.2025.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

The QUEST-DMC collaboration 2025, 'Dark matter attenuation effects: sensitivity ceilings for spin-dependent and spin-independent interactions', Journal of Cosmology and Astroparticle Physics, vol. 2025, no. 4, 017. https://doi.org/10.1088/1475-7516/2025/04/017

APA

The QUEST-DMC collaboration (2025). Dark matter attenuation effects: sensitivity ceilings for spin-dependent and spin-independent interactions. Journal of Cosmology and Astroparticle Physics, 2025(4), Article 017. https://doi.org/10.1088/1475-7516/2025/04/017

Vancouver

The QUEST-DMC collaboration. Dark matter attenuation effects: sensitivity ceilings for spin-dependent and spin-independent interactions. Journal of Cosmology and Astroparticle Physics. 2025 Apr 30;2025(4):017. Epub 2025 Apr 8. doi: 10.1088/1475-7516/2025/04/017

Author

The QUEST-DMC collaboration. / Dark matter attenuation effects : sensitivity ceilings for spin-dependent and spin-independent interactions. In: Journal of Cosmology and Astroparticle Physics. 2025 ; Vol. 2025, No. 4.

Bibtex

@article{bb3a385539aa46489f2e0d1cd207a20b,
title = "Dark matter attenuation effects: sensitivity ceilings for spin-dependent and spin-independent interactions",
abstract = "Direct detection experiments aimed at uncovering the elusive nature of dark matter (DM) have made significant progress in probing ever lower cross-sections for DM-nucleon interactions. At the same time, an upper limit in the cross-section sensitivity region is present due to DM scattering in the Earth and atmosphere and as a result never reaching the detector. We investigate the impact of this effect for both spin-dependent and spin-independent interactions. In contrast to previous studies that assume a straight line path for DM scattering we employ a semi-analytic diffusion model that takes into account the impact of potentially large angle deviations prevalent for light DM masses. We find that for sufficiently low energy thresholds, this difference in modelling impacts the DM interaction cross-section sensitivity. This study evaluates the impact in the context of the QUEST-DMC experiment, which utilises surface-based detectors with superfluid Helium-3 bolometers to search for sub-GeV DM exploiting low energy threshold. At masses below 1 GeV/c^2 the deviation between the two frameworks becomes pronounced. The ceiling sensitivity limit for QUEST-DMC on spin-dependent DM-neutron cross-sections is ∼ 3 × 10^-24cm^2 using the diffusive framework and approximately doubles with the straight-line path DM scattering. Similarly, for spin-independent DM-nucleon cross-sections, the ceiling limit is ∼ 7.5 × 10^-27cm^2 under the diffusive framework and also increases about a factor of two with the straight-line path approximation, within the mass range of 0.025–5 GeV/c^2.",
author = "{The QUEST-DMC collaboration} and N. Darvishi and J. Smirnov and S. Autti and L. Bloomfield and A. Casey and N. Eng and P. Franchini and R.P. Haley and P.J. Heikkinen and A. Jennings and A. Kemp and E. Leason and J. March-Russell and A. Mayer and J. Monroe and D. M{\"u}nstermann and M.T. Noble and J.R. Prance and X. Rojas and T. Salmon and J. Saunders and R. Smith and M.D. Thompson and A. Thomson and A. Ting and V. Tsepelin and S.M. West and L. Whitehead and D.E. Zmeev",
year = "2025",
month = apr,
day = "30",
doi = "10.1088/1475-7516/2025/04/017",
language = "English",
volume = "2025",
journal = "Journal of Cosmology and Astroparticle Physics",
issn = "1475-7516",
publisher = "IOP Publishing",
number = "4",

}

RIS

TY - JOUR

T1 - Dark matter attenuation effects

T2 - sensitivity ceilings for spin-dependent and spin-independent interactions

AU - The QUEST-DMC collaboration

AU - Darvishi, N.

AU - Smirnov, J.

AU - Autti, S.

AU - Bloomfield, L.

AU - Casey, A.

AU - Eng, N.

AU - Franchini, P.

AU - Haley, R.P.

AU - Heikkinen, P.J.

AU - Jennings, A.

AU - Kemp, A.

AU - Leason, E.

AU - March-Russell, J.

AU - Mayer, A.

AU - Monroe, J.

AU - Münstermann, D.

AU - Noble, M.T.

AU - Prance, J.R.

AU - Rojas, X.

AU - Salmon, T.

AU - Saunders, J.

AU - Smith, R.

AU - Thompson, M.D.

AU - Thomson, A.

AU - Ting, A.

AU - Tsepelin, V.

AU - West, S.M.

AU - Whitehead, L.

AU - Zmeev, D.E.

PY - 2025/4/30

Y1 - 2025/4/30

N2 - Direct detection experiments aimed at uncovering the elusive nature of dark matter (DM) have made significant progress in probing ever lower cross-sections for DM-nucleon interactions. At the same time, an upper limit in the cross-section sensitivity region is present due to DM scattering in the Earth and atmosphere and as a result never reaching the detector. We investigate the impact of this effect for both spin-dependent and spin-independent interactions. In contrast to previous studies that assume a straight line path for DM scattering we employ a semi-analytic diffusion model that takes into account the impact of potentially large angle deviations prevalent for light DM masses. We find that for sufficiently low energy thresholds, this difference in modelling impacts the DM interaction cross-section sensitivity. This study evaluates the impact in the context of the QUEST-DMC experiment, which utilises surface-based detectors with superfluid Helium-3 bolometers to search for sub-GeV DM exploiting low energy threshold. At masses below 1 GeV/c^2 the deviation between the two frameworks becomes pronounced. The ceiling sensitivity limit for QUEST-DMC on spin-dependent DM-neutron cross-sections is ∼ 3 × 10^-24cm^2 using the diffusive framework and approximately doubles with the straight-line path DM scattering. Similarly, for spin-independent DM-nucleon cross-sections, the ceiling limit is ∼ 7.5 × 10^-27cm^2 under the diffusive framework and also increases about a factor of two with the straight-line path approximation, within the mass range of 0.025–5 GeV/c^2.

AB - Direct detection experiments aimed at uncovering the elusive nature of dark matter (DM) have made significant progress in probing ever lower cross-sections for DM-nucleon interactions. At the same time, an upper limit in the cross-section sensitivity region is present due to DM scattering in the Earth and atmosphere and as a result never reaching the detector. We investigate the impact of this effect for both spin-dependent and spin-independent interactions. In contrast to previous studies that assume a straight line path for DM scattering we employ a semi-analytic diffusion model that takes into account the impact of potentially large angle deviations prevalent for light DM masses. We find that for sufficiently low energy thresholds, this difference in modelling impacts the DM interaction cross-section sensitivity. This study evaluates the impact in the context of the QUEST-DMC experiment, which utilises surface-based detectors with superfluid Helium-3 bolometers to search for sub-GeV DM exploiting low energy threshold. At masses below 1 GeV/c^2 the deviation between the two frameworks becomes pronounced. The ceiling sensitivity limit for QUEST-DMC on spin-dependent DM-neutron cross-sections is ∼ 3 × 10^-24cm^2 using the diffusive framework and approximately doubles with the straight-line path DM scattering. Similarly, for spin-independent DM-nucleon cross-sections, the ceiling limit is ∼ 7.5 × 10^-27cm^2 under the diffusive framework and also increases about a factor of two with the straight-line path approximation, within the mass range of 0.025–5 GeV/c^2.

U2 - 10.1088/1475-7516/2025/04/017

DO - 10.1088/1475-7516/2025/04/017

M3 - Journal article

VL - 2025

JO - Journal of Cosmology and Astroparticle Physics

JF - Journal of Cosmology and Astroparticle Physics

SN - 1475-7516

IS - 4

M1 - 017

ER -