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Many-Body Quantum Teleportation via Operator Spreading in the Traversable Wormhole Protocol

Publication ,  Journal Article
Schuster, T; Kobrin, B; Gao, P; Cong, I; Khabiboulline, ET; Linke, NM; Lukin, MD; Monroe, C; Yoshida, B; Yao, NY
Published in: Physical Review X
July 1, 2022

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 origin: It relies upon the spreading of local operators under generic thermalizing dynamics and not gravitational physics. We demonstrate the ubiquity of peaked-size teleportation, both analytically and numerically, across a diverse landscape of physical systems, including random unitary circuits, the Sachdev-Ye-Kitaev model (at high temperatures), one-dimensional spin chains, and a bulk theory of gravity with stringy corrections. Our results pave the way toward using many-body quantum teleportation as a powerful experimental tool for (i) characterizing the size distributions of operators in strongly correlated systems and (ii) distinguishing between generic and intrinsically gravitational scrambling dynamics. To this end, we provide a detailed experimental blueprint for realizing many-body quantum teleportation in both trapped ions and Rydberg atom arrays; effects of decoherence and experimental imperfections are analyzed.

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Published In

Physical Review X

DOI

EISSN

2160-3308

Publication Date

July 1, 2022

Volume

12

Issue

3

Related Subject Headings

  • 51 Physical sciences
  • 0206 Quantum Physics
  • 0204 Condensed Matter Physics
  • 0201 Astronomical and Space Sciences
 

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Schuster, T., Kobrin, B., Gao, P., Cong, I., Khabiboulline, E. T., Linke, N. M., … Yao, N. Y. (2022). Many-Body Quantum Teleportation via Operator Spreading in the Traversable Wormhole Protocol. Physical Review X, 12(3). https://doi.org/10.1103/PhysRevX.12.031013
Schuster, T., B. Kobrin, P. Gao, I. Cong, E. T. Khabiboulline, N. M. Linke, M. D. Lukin, C. Monroe, B. Yoshida, and N. Y. Yao. “Many-Body Quantum Teleportation via Operator Spreading in the Traversable Wormhole Protocol.” Physical Review X 12, no. 3 (July 1, 2022). https://doi.org/10.1103/PhysRevX.12.031013.
Schuster T, Kobrin B, Gao P, Cong I, Khabiboulline ET, Linke NM, et al. Many-Body Quantum Teleportation via Operator Spreading in the Traversable Wormhole Protocol. Physical Review X. 2022 Jul 1;12(3).
Schuster, T., et al. “Many-Body Quantum Teleportation via Operator Spreading in the Traversable Wormhole Protocol.” Physical Review X, vol. 12, no. 3, July 2022. Scopus, doi:10.1103/PhysRevX.12.031013.
Schuster T, Kobrin B, Gao P, Cong I, Khabiboulline ET, Linke NM, Lukin MD, Monroe C, Yoshida B, Yao NY. Many-Body Quantum Teleportation via Operator Spreading in the Traversable Wormhole Protocol. Physical Review X. 2022 Jul 1;12(3).

Published In

Physical Review X

DOI

EISSN

2160-3308

Publication Date

July 1, 2022

Volume

12

Issue

3

Related Subject Headings

  • 51 Physical sciences
  • 0206 Quantum Physics
  • 0204 Condensed Matter Physics
  • 0201 Astronomical and Space Sciences