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arXiv · 2608.26255

First-Principles Nuclear Modeling for Light Dark Matter Experiments at the Intensity Frontier

Abstract

Accelerator-based experiments at the intensity frontier, in which a high-energy beam impinges on a nuclear target, serve as powerful probes of the light dark matter paradigm. Such experiments require precise modeling of the target nucleus for reliable signal predictions. We present the application of a many-body ab initio method to calculate light dark matter mediator production signal rates at electron fixed-target experiments, using chiral effective field theory interactions. Considering both elastic and quasi elastic scattering, we compute cross sections using a Monte Carlo event generator implementation informed by ab initio nuclear elastic form factors and spectral functions for three representative nuclei, $^{20}$Ne, $^{34}$Si, and $^{56}$Fe, at varying electron beam energies. We compare our results to a commonly used phenomenological parameterization, finding an increased signal yield by up to two orders of magnitude with our quasi elastic treatment and an agreement for lighter mediators.

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Taylor R. Gray, Alberto Scalesi. 2026-08-26. First-Principles Nuclear Modeling for Light Dark Matter Experiments at the Intensity Frontier. https://arxiv.org/abs/2608.26255

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