Many-body quantum teleportation via operator spreading in the traversable wormhole protocol
Thomas Schuster, Bryce Kobrin, Ping Gao, Iris Cong, Emil T., Khabiboulline, Norbert M. Linke, Mikhail D. Lukin, Christopher Monroe, Beni, Yoshida, Norman Y. Yao

TL;DR
This paper introduces peaked-size teleportation, a new many-body quantum teleportation mechanism based on operator spreading, which is distinct from gravitational models and applicable across various physical systems, with potential experimental implementations.
Contribution
The paper proposes peaked-size teleportation, connecting operator spreading with many-body teleportation, and demonstrates its universality and experimental feasibility beyond gravitational contexts.
Findings
Peaked-size teleportation relies on operator spreading in thermalizing systems.
It is demonstrated analytically and numerically in diverse models.
Experimental protocols for implementation are detailed.
Abstract
By leveraging shared entanglement between a pair of qubits, one can teleport a quantum state from one particle to another. Recent advances have uncovered an intrinsically many-body generalization of quantum teleportation, with an elegant and surprising connection to gravity. In particular, the teleportation of quantum information relies on many-body dynamics, which originate from strongly-interacting systems that are holographically dual to gravity; from the gravitational perspective, such quantum teleportation can be understood as the transmission of information through a traversable wormhole. Here, we propose and analyze a new mechanism for many-body quantum teleportation -- dubbed peaked-size teleportation. Intriguingly, peaked-size teleportation utilizes precisely the same type of quantum circuit as traversable wormhole teleportation, yet has a completely distinct microscopic…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Cold Atom Physics and Bose-Einstein Condensates
