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Strange quark matter as dark matter: 40 years later, a reappraisal

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arxiv 2404.12094 v3 pith:4UKAJJ2E submitted 2024-04-18 hep-ph astro-ph.COnucl-th

classification hep-phastro-ph.COnucl-th
keywords matterphasestrangeletsdarkstrangeyearsclustersdiscuss
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

Forty years ago Witten suggested that dark matter could be composed of macroscopic clusters of strange quark matter. This idea was very popular for several years, but it dropped out of fashion once lattice QCD calculations indicated that the confinement/deconfinement transition, at small baryonic chemical potential, is not first order, which seemed to be a crucial requirement in order to produce large clusters of quarks. Here we revisit the conditions under which strangelets can be produced in the Early Universe. We discuss the impact of an instability in the hadronic phase separating a low density, positive-strange-charge phase from a high-density phase with a negative strange charge. This second phase can rapidly stabilize by forming color-superconducting gaps. The strangelets then undergo partial evaporation. In this way, we obtain distributions of their sizes in agreement with the observational constraints and we discuss the many astrophysical and cosmological implications of these objects. Finally, we examine the most promising techniques to detect this type of strangelets. We also show that strangelets can exist with masses $\lesssim10^{17} \mathrm g$, while primordial black holes are ruled out in that mass range, allowing us to distinguish between these two dark matter candidates.

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Cited by 2 Pith papers

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  1. The Sun's Dark Core: Helioseismic and neutrino flux constraints on a compact solar center

    astro-ph.SR 2025-05 conditional novelty 6.0 of 10

    Solar oscillations constrain a compact dark matter core in the Sun to below one hundred-thousandth of a solar mass, and a one-thousandth-solar-mass core improves helioseismic agreement by mimicking a heavy metal core.

  2. Constraint on the magnetic field for the stable strange quark matter

    hep-ph 2025-01 conditional novelty 3.0 of 10

    A quasiparticle model predicts a lower limit on the magnetic field required for absolutely stable strange quark matter, with the limit rising as quark coupling and vacuum bag constant increase.

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