English

Novel black hole bound states and entropy

General Relativity and Quantum Cosmology 2013-05-29 v3 High Energy Physics - Theory

Abstract

We solve for the spectrum of the Laplacian as a Hamiltonian on R2D\mathbb{R}^{2}-\mathbb{D} and in R3B\mathbb{R}^{3}-\mathbb{B}. A self-adjointness analysis with D\partial\mathbb{D} and B\partial\mathbb{B} as the boundary for the two cases shows that a general class of boundary conditions for which the Hamiltonian operator is essentially self-adjoint are of the mixed (Robin) type. With this class of boundary conditions we obtain "bound state" solutions for the Schroedinger equation. Interestingly, these solutions are all localized near the boundary. We further show that the number of bound states is finite and is in fact proportional to the perimeter or area of the removed \emph{disc} or \emph{ball}. We then argue that similar considerations should hold for static black hole backgrounds with the horizon treated as the boundary.

Keywords

Cite

@article{arxiv.1102.4919,
  title  = {Novel black hole bound states and entropy},
  author = {T. R. Govindarajan and Rakesh Tibrewala},
  journal= {arXiv preprint arXiv:1102.4919},
  year   = {2013}
}

Comments

13 pages, 3 figures, approximate formula for energy spectrum added at the end of section 2.1 along with additional minor changes to comply with the version accepted in PRD