4.4 Article

Entanglement and confinement in coupled quantum systems

Journal

JOURNAL OF HIGH ENERGY PHYSICS
Volume -, Issue 2, Pages -

Publisher

SPRINGER
DOI: 10.1007/JHEP02(2021)034

Keywords

Field Theories in Lower Dimensions; Integrable Field Theories

Funding

  1. Asia Pacific Center for Theoretical Physics
  2. Kavli Institute for Theoretical Science at the University of Chinese Academy of Science, Tsinghua University [THERMOLOC ANR-16-CE30-0023-02]
  3. French National Research Agency (ANR)
  4. STFC Ernest Rutherford Grant [ST/R003599/1]
  5. JSPS KAKENHI [Grants17K1428]
  6. US Department of Energy [DE-SC0010010]
  7. U.S. Department of Energy [DE-SC0019480]
  8. University of California
  9. Kavli Institute for Theoretical Science (KITS)
  10. University of Chinese Academy of Science
  11. PRACE [2016153659]
  12. CALMIP [2018-P0677, 2019-P0677, 2020-P0677, 2018-A0030500225, 2019-A0030500225]
  13. STFC [ST/R003599/1] Funding Source: UKRI
  14. U.S. Department of Energy (DOE) [DE-SC0019480] Funding Source: U.S. Department of Energy (DOE)

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We study the general properties of coupled quantum systems, focusing on SYK models and Pauli spin chains with random magnetic fields. Numerical computations in the coupled SYK model are pushed to the thermodynamic limit, showing good agreement with analytical results in the large-q limit. The understanding of confinement/deconfinement transition mechanisms enables precise estimation of quantum entanglement, supporting the dual gravity interpretation linking deconfinement to the disappearance of wormholes.
We study some general properties of coupled quantum systems. We consider simple interactions between two copies of identical Hamiltonians such as the SYK model, Pauli spin chains with random magnetic field and harmonic oscillators. Such couplings make the ground states close to the thermofield double states of the uncoupled Hamiltonians. For the coupled SYK model, we push the numerical computation further towards the thermodynamic limit so that an extrapolation in the size of the system is possible. We find good agreement between the extrapolated numerical result and the analytic result in the large-q limit. We also consider the coupled gauged matrix model and vector model, and argue that the deconfinement is associated with the loss of the entanglement, similarly to the previous observation for the coupled SYK model. The understanding of the microscopic mechanism of the confinement/deconfinement transition enables us to estimate the quantum entanglement precisely, and backs up the dual gravity interpretation which relates the deconfinement to the disappearance of the wormhole. Our results demonstrate the importance of the entanglement between the color degrees of freedom in the emergence of the bulk geometry from quantum field theory via holography.

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