Collision of an innermost stable circular orbit particle around a Kerr black hole
Tomohiro Harada, Masashi Kimura

TL;DR
This paper derives formulas for the maximum collision energy of particles near a Kerr black hole's horizon, showing that high-energy collisions are naturally possible without fine-tuning, especially around rapidly rotating black holes.
Contribution
The paper provides new formulas for the center-of-mass energy of particle collisions near Kerr black holes, specifically for particles from the ISCO, highlighting the potential for arbitrarily high energies in astrophysical scenarios.
Findings
Maximum CM energy near horizon for near-maximal spin: ~1.40/ (1 - a_*^2)^{1/4}
Maximum CM energy on ISCO: ~1.77/ (1 - a_*^2)^{1/6}
High-energy collisions are naturally expected around rapidly rotating black holes.
Abstract
We derive a general formula for the center-of-mass (CM) energy for the near-horizon collision of two particles of the same rest mass on the equatorial plane around a Kerr black hole. We then apply this formula to a particle which plunges from the innermost stable circular orbit (ISCO) and collides with another particle near the horizon. It is found that the maximum value of the CM energy is given by for a nearly maximally rotating black hole, where is the rest mass of each particle and is the nondimensional Kerr parameter. This coincides with the known upper bound for a particle which begins at rest at infinity within a factor of 2. Moreover, we also consider the collision of a particle orbiting the ISCO with another particle on the ISCO and find that the maximum CM energy is then given by $E_{\rm…
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