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Main Authors: Bhutani, Aryaman, Raj, Nirmal, Zuraiq, Zenia
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2507.08076
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author Bhutani, Aryaman
Raj, Nirmal
Zuraiq, Zenia
author_facet Bhutani, Aryaman
Raj, Nirmal
Zuraiq, Zenia
contents The interiors of neutron stars enjoy ideal conditions for the conversion of hadrons to a strange quark phase, theorized to be the stablest form of matter. Though numerous astrophysical means to prompt such a deconfinement phase transition have been suggested, they may be pre-empted by a large energy barrier for nucleation of quark matter droplets. We will show that interactions of hidden sectors of particles with nucleons may surmount the barrier if it exceeds deca-GeV energies, and spark a phase transition. The neutron star would then, depending on the equation of state of QCD matter, convert to a black hole and/or set off a gamma-ray burst (GRB). Using the observed existence of ancient neutron stars and estimates of the GRB rate, we then set some of the strictest (albeit conditional) limits on dark matter scatters, annihilations, and decays that are tens of orders stronger than those from terrestrial searches. For smaller energy barriers, lower limits on nucleon decay lifetimes of the order of $10^{64}$~yr may be obtained
format Preprint
id arxiv_https___arxiv_org_abs_2507_08076
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dark, deep, deconfining: Phase transitions in neutron stars as powerful probes of hidden sectors
Bhutani, Aryaman
Raj, Nirmal
Zuraiq, Zenia
High Energy Physics - Phenomenology
High Energy Astrophysical Phenomena
High Energy Physics - Experiment
The interiors of neutron stars enjoy ideal conditions for the conversion of hadrons to a strange quark phase, theorized to be the stablest form of matter. Though numerous astrophysical means to prompt such a deconfinement phase transition have been suggested, they may be pre-empted by a large energy barrier for nucleation of quark matter droplets. We will show that interactions of hidden sectors of particles with nucleons may surmount the barrier if it exceeds deca-GeV energies, and spark a phase transition. The neutron star would then, depending on the equation of state of QCD matter, convert to a black hole and/or set off a gamma-ray burst (GRB). Using the observed existence of ancient neutron stars and estimates of the GRB rate, we then set some of the strictest (albeit conditional) limits on dark matter scatters, annihilations, and decays that are tens of orders stronger than those from terrestrial searches. For smaller energy barriers, lower limits on nucleon decay lifetimes of the order of $10^{64}$~yr may be obtained
title Dark, deep, deconfining: Phase transitions in neutron stars as powerful probes of hidden sectors
topic High Energy Physics - Phenomenology
High Energy Astrophysical Phenomena
High Energy Physics - Experiment
url https://arxiv.org/abs/2507.08076