Dynamically self-regular quantum harmonic black holes
arXiv:1503.01681 · doi:10.1016/j.physletb.2015.03.004
Abstract
The recently proposed UV self-complete quantum gravity program is a new and very interesting way to envision Planckian/trans-Planckian physics. in this new framework, high energy scattering is dominated by the creation of micro black holes, and it is experimentally impossible to probe distances shorter than the horizon radius. In this letter we present a model which realizes this idea through the creation of self-regular quantum black holes admitting a minimal size extremal configuration. Their radius provides a dynamically generated minimal length acting as a universal short-distance cut-off. We propose a quantisation scheme for this new kind of microscopic objects based on a Bohr-like approach, which does not require a detailed knowledge of quantum gravity. The resulting black hole quantum picture resembles the energy spectrum of a quantum harmonic oscillator. The mass of the extremal configuration plays the role of zero-point energy. Large quantum number re-establish the classical black hole description. Finally, we also formulate a "quantum hoop conjecture" which is satisfied by all the mass eigen-states and sustains the existence of quantum black holes sourced by Gaussian matter distributions.
14 pages; 2 Figures. In print in Physics Letters B
References in corpus (12)
- Noncommutative geometry inspired charged black holes
- Non-commutative geometry inspired higher-dimensional charged, black holes
- Noncommutative Inspired Black Holes in Extra Dimensions
- Black Hole Formation and Classicalization in Ultra-Planckian 2 -> N Scattering
- Colorful quantum black holes at the LHC
- Self-Completeness of Einstein Gravity
- Regular black holes in UV self-complete quantum gravity
- Black Hole Masses are Quantized
- Black Hole Production at the LHC by Standard Model Bulk Fields in the Randall-Sundrum Model
- Zero-point length, extra-dimensions and string T-duality
- Top Quark Production from Black Holes at the CERN LHC
- Top Production from Black Holes at the LHC