ArXiv TLDR

Micron-sized Extra Dimensions and Primordial Black Holes: Charges, Rotating, and Memory Burdened

🐦 Tweet
2605.00252

George K. Leontaris, George Prampromis

hep-phgr-qchep-th

TLDR

This paper explores 6D primordial black holes in micron-sized extra dimensions as dark matter, testable at future colliders.

Key contributions

  • Proposes 6D primordial black holes in micron-sized extra dimensions as dark matter candidates.
  • Identifies a fundamental energy scale of ~10 TeV, testable by future collider experiments.
  • Shows memory burden scenario allows sub-gram PBHs to survive, expanding the dark matter mass window.
  • Predicts high multiplicity, thermal events from micro black holes at future colliders.

Why it matters

This paper proposes a novel dark matter candidate: 6D primordial black holes in extra dimensions, with a fundamental scale accessible by future colliders. It significantly broadens the viable mass range for PBH dark matter and suggests a unified framework across multiple physics domains.

Original Abstract

We explore the possibility of explaining dark matter through six-dimensional (6D) primordial black holes (PBHs) in a theory with two extra dimensions. Interestingly, in this scenario the fundamental energy scale is of the order of $\sim 10$ TeV, accessible by future experiments. We analyse the viability of charged and rotating 6D black holes under standard Hawking evaporation as well as the memory burden scenario. In the case of pure Hawking evaporation, only PBHs with masses $M > 10^8$ g survive to present, while the lifetime of near-extremal configurations is extended by a factor $1/β^{1/2}$, where the parameter $β$ characterizes small deviations from extremality. In the memory burden scenario evaporation is enormously suppressed, and sub-gram mass PBHs can survive to the present epoch. At future colliders such as the Future Circular Collider, these micro black holes produce characteristic high multiplicity events, $\langle N \rangle \sim 21$, with thermal spectra, enabling direct probes of the fundamental scale and the number of extra dimensions. We find that the memory burden mechanism opens a broad new mass window for light PBH dark matter, while the Kaluza-Klein mass splitting $Δm$ aligns with the atmospheric neutrino scale, suggesting a unified framework between Swampland constraints, cosmology, collider physics, and low energy phenomenology.

📬 Weekly AI Paper Digest

Get the top 10 AI/ML arXiv papers from the week — summarized, scored, and delivered to your inbox every Monday.