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arXiv:2006.16429·v2·High Energy Physics — Lattice

Stealth dark matter confinement transition and gravitational waves

R. C. Brower🇺🇸 · K. Cushman🇺🇸 · G. T. Fleming🇺🇸 · A. Gasbarro🇨🇭 · A. Hasenfratz🇺🇸 · X. Y. Jin🇺🇸 · G. D. Kribs🇺🇸 · E. T. Neil🇺🇸 · J. C. Osborn🇺🇸 · C. Rebbi🇺🇸 · E. Rinaldi🇯🇵 · D. Schaich🇬🇧 · P. Vranas🇺🇸 · O. Witzel (Lattice Strong Dynamics Collaboration)🇺🇸

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Abstract

We use non-perturbative lattice calculations to investigate the finite-temperature confinement transition of stealth dark matter, focusing on the regime in which this early-universe transition is first order and would generate a stochastic background of gravitational waves. Stealth dark matter extends the standard model with a new strongly coupled SU(4) gauge sector with four massive fermions in the fundamental representation, producing a stable spin-0 'dark baryon' as a viable composite dark matter candidate. Future searches for stochastic gravitational waves will provide a new way to discover or constrain stealth dark matter, in addition to previously investigated direct-detection and collider experiments. As a first step to enabling this phenomenology, we determine how heavy the dark fermions need to be in order to produce a first-order stealth dark matter confinement transition.

Comments: Data release at doi.org/10.5281/zenodo.3921870

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