Emergent gravity from relatively local Hamiltonians and a possible resolution of the black hole information puzzle
Sung-Sik Lee

TL;DR
This paper proposes a model where gravity and time emerge from quantum matter states, offering a potential resolution to the black hole information paradox by maintaining unitarity and entanglement structure.
Contribution
It introduces a framework where gravity emerges from matter Hamiltonians with relative locality, and explains black hole evaporation without loss of information.
Findings
Gravity emerges from matter Hamiltonians in the semi-classical limit.
Black hole evaporation preserves unitarity and entanglement.
States remain pure despite Hawking radiation and entropy considerations.
Abstract
In this paper, we study a possibility where gravity and time emerge from quantum matter. Within the Hilbert space of matter fields defined on a spatial manifold, we consider a sub-Hilbert space spanned by states which are parameterized by spatial metric. In those states, metric is introduced as a collective variable that controls local structures of entanglement. The underlying matter fields endow the states labeled by metric with an unambiguous inner product. Then we construct a Hamiltonian for the matter fields that is an endomorphism of the sub-Hilbert space, thereby inducing a quantum Hamiltonian of the metric. It is shown that there exists a matter Hamiltonian that induces the general relativity in the semi-classical field theory limit. Although the Hamiltonian is not local in the absolute sense, it has a weaker notion of locality, called relative locality : the range of…
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