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Infrared scaling for a graviton condensate

General Relativity and Quantum Cosmology 2022-03-14 v2 High Energy Physics - Theory Quantum Physics

Abstract

The coupling between gravity and matter provides an intriguing length scale in the infrared for theories of gravity within Einstein-Hilbert action and beyond. In particular, we will show that such an infrared length scale is determined by the number of gravitons Ng1N_{g}\gg1 associated to a given mass in the non-relativistic limit. After tracing out the matter degrees of freedom, the graviton vacuum is found to be in a displaced vacuum with an occupation number of gravitons Ng1N_{g}\gg1. In the infrared, the length scale appears to be L=NgpL=\sqrt{N_{g}}\ell_{p}, where LL is the new infrared length scale, and p\ell_{p} is the Planck length. In a specific example, we have found that the infrared length scale is greater than the Schwarzschild radius for a slowly moving in-falling thin shell of matter. We will argue that the appearance of such an infrared length scale in higher curvature theories of gravity, such as in quadratic and cubic curvature theories of gravity, is also expected. Furthermore, we will show that gravity is fundamentally different from the electromagnetic interaction where the number of photons, NpN_{p}, is the fine structure constant after tracing out an electron wave function.

Keywords

Cite

@article{arxiv.2110.04536,
  title  = {Infrared scaling for a graviton condensate},
  author = {Sougato Bose and Anupam Mazumdar and Marko Toroš},
  journal= {arXiv preprint arXiv:2110.04536},
  year   = {2022}
}

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10 pages