4.7 Article

Entanglement and many-body effects in collective neutrino oscillations

期刊

PHYSICAL REVIEW D
卷 104, 期 10, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.104.103016

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资金

  1. InQubator for Quantum Simulation under U.S. DOE [DE-SC0020970]
  2. Quantum Science Center (QSC), a National Quantum Information Science Research Center of the U.S. Department of Energy (DOE)
  3. U.S. Department of Energy (DOE) [DE-SC0020970] Funding Source: U.S. Department of Energy (DOE)

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This study explores the importance of collective neutrino oscillations in transporting lepton flavor in astrophysical settings, and how collective oscillations can be triggered. It also finds that classical tensor network methods could be efficient in describing collective neutrino dynamics.
Collective neutrino oscillations play a crucial role in transporting lepton flavor in astrophysical settings, such as supernovae, where the neutrino density is large. In this regime, neutrino-neutrino interactions are important and simulations in the mean-field approximation show evidence for collective oscillations occurring at timescales much shorter than those associated with vacuum oscillations. In this work, we study the out-of-equilibrium dynamics of a corresponding spin model using matrix product states and show how collective bipolar oscillations can be triggered by many-body correlations if appropriate initial conditions are present. We find entanglement entropies scaling at most logarithmically in the system size suggesting that classical tensor network methods could be efficient in describing collective neutrino dynamics more generally. These observation provide a clear path forward, not only to increase the accuracy of current simulations, but also to elucidate the mechanism behind collective flavor oscillations without resorting to the mean-field approximation.

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