Primordial black holes with an accurate QCD equation of state
Christian T. Byrnes, Mark Hindmarsh, Sam Young, Michael R. S. Hawkins

TL;DR
This paper uses new lattice QCD data to accurately calculate how the QCD phase transition enhances primordial black hole formation, especially around 0.7 solar masses, with implications for dark matter and gravitational wave observations.
Contribution
It provides the first detailed calculation of PBH mass distribution enhancement during the QCD phase transition using definitive lattice QCD results.
Findings
Peak enhancement at approximately 0.7 solar masses
Formation rate increases by at least two orders of magnitude
PBH mass range includes LIGO-detected black holes
Abstract
Making use of definitive new lattice computations of the Standard Model thermodynamics during the quantum chromodynamic (QCD) phase transition, we calculate the enhancement in the mass distribution of primordial black holes (PBHs) due to the softening of the equation of state. We find that the enhancement peaks at approximately , with the formation rate increasing by at least two orders of magnitude due to the softening of the equation of state at this time, with a range of approximately at full width half-maximum. PBH formation is increased by a smaller amount for PBHs with masses spanning a large range, , which includes the masses of the BHs that LIGO detected. The most significant source of uncertainty in the number of PBHs formed is now due to unknowns in the formation process, rather than from the phase…
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