Quantum Hairs and Entropy of Quantum Isolated Horizon from Chern-Simons Theory
Abhishek Majhi, Parthasarathi Majumdar

TL;DR
This paper shows that the quantum states of black hole horizons in loop quantum gravity are fully characterized by two integer parameters, and derives the black hole entropy and corrections directly from Chern-Simons theory without extra assumptions.
Contribution
It provides a novel derivation of black hole entropy from Chern-Simons theory using only two quantum parameters, avoiding additional classical or semi-classical assumptions.
Findings
Microstates derived from Chern-Simons theory match Bekenstein-Hawking entropy
Logarithmic correction with coefficient -3/2 confirmed
Barbero-Immirzi parameter depends on the ratio k/N
Abstract
We articulate the fact that the loop quantum gravity description of the quantum macrostates of black hole horizons, modeled as Quantum Isolated Horizons (QIHs), is completely characterized in terms of two independent integer-valued `quantum hairs', viz,. the coupling constant of the quantum Chern-Simons theory describing QIH dynamics, and the number of punctures produced by the bulk spin network edges piercing the isolated horizon (which act as pointlike sources for the Chern- Simons fields). We demonstrate that the microcanonical entropy of macroscopic (both parameters assuming very large values) QIHs can be obtained directly from the microstates of this Chern-Simons theory, using standard statistical mechanical methods, without having to additionally postulate the horizon as an ideal gas of punctures, or incorporate any additional classical or semi-classical input…
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