Unitarity and information in quantum gravity: a simple example
Lautaro Amadei, Hongguang Liu, Alejandro Perez

TL;DR
This paper demonstrates that in a loop quantum gravity-inspired cosmological model, pure states can evolve into mixed states due to decoherence with microscopic degrees of freedom, offering a natural resolution to the black hole information paradox.
Contribution
It provides a concrete quantum gravity model showing how decoherence occurs without energy dissipation, supporting a natural resolution to the black hole information puzzle.
Findings
Pure states become mixed due to decoherence with microscopic structure.
Decoherence occurs without energy transfer, preserving unitarity.
Supports information preservation through correlations with quantum geometry.
Abstract
In approaches to quantum gravity, where smooth spacetime is an emergent approximation of a discrete Planckian fundamental structure, any effective smooth field theoretical description would miss part of the fundamental degrees of freedom and thus break unitarity. This is applicable also to trivial gravitational field (low energy) idealizations realized by the use of the Minkowski background geometry which, as any other spacetime geometry, corresponds, in the fundamental description, to infinitely many different and closely degenerate discrete microstates. The existence of such microstates provides a large reservoir for information to be coded at the end of black hole evaporation and thus opens the way to a natural resolution of the black hole evaporation information puzzle. In this paper we show that these expectations can be made precise in a simple quantum gravity model for…
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