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Gravitational Vector Dark Matter

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arxiv 2012.12087 v2 pith:VI7A46J3 submitted 2020-12-22 hep-ph

classification hep-ph
keywords lambdastatesbounddarkgaugegravitationalcandidateslifetimes
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

A new dark sector consisting of a pure non-abelian gauge theory has no renormalizable interaction with SM particles, and can thereby realise gravitational Dark Matter (DM). Gauge interactions confine at a scale $\Lambda_{\rm DM}$ giving bound states with typical lifetimes $\tau \sim M_{\rm Pl}^4/\Lambda^5_{\rm DM}$ that can be DM candidates if $\Lambda_{\rm DM} $ is below 100 TeV. Furthermore, accidental symmetries of group-theoretical nature produce special gravitationally stable bound states. In the presence of generic Planck-suppressed operators such states become long-lived: SU$(N)$ gauge theories contain bound states with $\tau \sim M_{\rm Pl}^8/\Lambda^9_{\rm DM}$; even longer lifetimes $\tau= (M_{\rm Pl}/\Lambda_{\rm DM})^{2N-4}/\Lambda_{\rm DM}$ arise from SO$(N)$ theories with $N \ge 8$, and possibly from $F_4$ or $E_8$. We compute their relic abundance generated by gravitational freeze-in and by inflationary fluctuations, finding that they can be viable DM candidates for $\Lambda_{\rm DM} \gtrsim 10^{10}$ GeV.

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  1. Optical gravitational waves as signals of Gravitationally-Decaying Particles

    hep-ph 2025-01 conditional novelty 6.0 of 10

    A particle that decays only through gravitational channels can produce relic gravitational waves with a narrow optical-frequency spectrum, possibly at an observable abundance near the BBN/CMB bound.

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