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Solar Capture Tests of Inelastic Dark Matter after the LZ High-Recoil Event

Mattia Di Mauro, Halim Shaikh

hep-pharXiv:2609.06760

Abstract

The LUX-ZEPLIN (LZ) Collaboration has reported a 248 keV nuclear-recoil candidate for which endothermic dark matter (DM) gives some of the largest local significances. We study Solar-capture constraints on three interpretations: a thermal Higgsino, a thermal pseudo-Dirac fermion with off-diagonal vector interactions, and neutron-philic endothermic spin-dependent scattering through O4. The canonical full-density thermal Higgsino is excluded: its LZ-preferred splitting near 0.38\,MeV lies well below the splitting required to suppress Solar capture sufficiently to satisfy the IceCube upper limits on DM annihilation in the Sun, δ0.51-0.56\,MeV. For the pseudo-Dirac benchmark parameters that fit the LZ event, we find C=1.53×1020\,s-1, while two-state kinetics limits the fixed-orbit annihilation rate to ΓA4.4×1014\,s-1, about 1.7×105 below the IceCube upper limit for the b b channel. A semi-analytic treatment indicates that re-excitation cycles further cool the captured population, although a full phase-space calculation is required for its final distribution. For neutron-philic O4 scattering at mχ=1 TeV and δ=300 keV, finite-temperature capture gives C=3.98×1017\,s-1, with nuclear-structure uncertainties giving an envelope (1.77-9.72)×1017\,s-1. Under the equilibrium assumption, the upper edge remains about a factor 154 below the IceCube upper limit for the b b channel. We use b b only as a soft-hadronic proxy because an exact constraint requires the model-specific annihilation spectrum. Solar capture therefore excludes the thermal-Higgsino interpretation but not endothermic explanations generically.

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