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October 17, 20250 citationsOpen Access

Temporal Entanglement from Holographic Entanglement Entropy

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MHMichał P. HellerFOFabio OriASAlexandre Serantes

Key Points

  • Temporal entanglement is characterized systematically in relativistic quantum field theories, showing new properties.
  • The method involves analytically continuing codimension-two bulk extremal surfaces, which yields unique physical characteristics.
  • Results are validated within two-dimensional Lorentzian cylinders and three-dimensional Minkowski spaces, confirming self-consistency.
  • This study highlights the emergence of temporal entanglement as an important aspect of quantum many-body physics.

Abstract

Recently, several notions of entanglement in time have emerged as a novel frontier in quantum many-body physics, quantum field theory and gravity. We propose a systematic prescription to characterize temporal entanglement in relativistic quantum field theory in a general state for an arbitrary subregion on a flat, constant-time slice in a flat spacetime. Our prescriptions starts with the standard entanglement entropy of a spatial subregion and amounts to transporting the unchanged subregion to boosted time slices all the way across the light cone when it becomes in general a complex characterization of the corresponding temporal subregion. For holographic quantum field theories, our prescription amounts to an analytic continuation of all codimension-two bulk extremal surfaces satisfying the homology constraint and picking the one with the smallest real value of the area as the leading saddle point. We implement this prescription for holographic conformal field theories in thermal states on both a two-dimensional Lorentzian cylinder and three-dimensional Minkowski space, and show that it leads to results with self-consistent physical properties of temporal entanglement.

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Cite This Study

Heller et al. (2025) studied this question.

synapsesocial.com/papers/68f19f20de32064e504ddd00https://doi.org/10.48550/arxiv.2507.17847
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