On the Backreaction of Dirac Matter in JT Gravity and SYK Model
Abstract
We model backreaction in AdS JT gravity via a proposed boundary dual Sachdev-Ye-Kitaev quantum dot coupled to Dirac fermion matter and study it from the perspective of quantum entanglement and chaos. The boundary effective action accounts for the backreaction through a linear coupling of the Dirac fermions to the Gaussian-random two-body Majorana interaction term in the low-energy limit. We calculate the time evolution of the entanglement entropy between graviton and Dirac fermion fields for a separable initial state and find that it initially increases and then saturates to a finite value. Moreover, in the limit of a large number of fermions, we find a maximally entangled state between the Majorana and Dirac fields in the saturation region, implying a transition of the von Neumann algebra of observables from type I to type II. This transition in turn indicates a loss of information in the holographically dual emergent spacetime. We corroborate these observations with a detailed numerical computation of the averaged nearest-neighbor gap ratio of the boundary spectrum and provide a useful complement to quantum entanglement studies of holography.
Keywords
Cite
@article{arxiv.2312.06128,
title = {On the Backreaction of Dirac Matter in JT Gravity and SYK Model},
author = {Pak Hang Chris Lau and Chen-Te Ma and Jeff Murugan and Masaki Tezuka},
journal= {arXiv preprint arXiv:2312.06128},
year = {2024}
}
Comments
16 pages, 2 figures, 1 table, minor changes, reference added