4.6 Article

Quantum squeezing of slow-light solitons

期刊

PHYSICAL REVIEW A
卷 103, 期 6, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.103.063512

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资金

  1. National Natural Science Foundation of China [11975098]
  2. Research Funds of Happiness Flower ECNU [2020ECNU-XFZH005]

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This study investigates quantum squeezing of slow-light solitons generated in a Lambda-shaped three-level atomic system under the condition of electromagnetically induced transparency (EIT). By deriving a quantum nonlinear Schrodinger equation and conducting detailed calculations on quantum fluctuations, it demonstrates significant quantum squeezing of slow-light solitons within a short propagation distance due to giant Kerr nonlinearity from the EIT effect. These results contribute to understanding the quantum properties of slow-light solitons and realizing light squeezing through EIT in cold atomic gases experimentally.
We investigate the quantum squeezing of slow-light solitons generated in a Lambda-shaped three-level atomic system working under condition of electromagnetically induced transparency (EIT). Starting from the Heisenberg-Langevin and Maxwell equations governing the quantum dynamics of atoms and probe laser field, we derive a quantum nonlinear Schrodinger equation controlling the evolution of the probe-field envelope. By using a direct perturbation approach to diagonalize the effective Hamiltonian (where the atomic variables have been eliminated), we carry out a detailed calculation on the quantum fluctuations of a slow-light soliton, expanded as a superposition of the complete and orthonormalized set of eigenfunctions obtained by solving the Bogoliubov-de Gennes (BdG) equations describing the quantum fluctuations. We show that due to the giant Kerr nonlinearity contributed from the EIT effect, significant quantum squeezing of the slow-light soliton can be realized within a short propagation distance. The results reported here are helpful for understanding the quantum property of slow-light solitons and for realizing light squeezing via EIT in cold atomic gases experimentally.

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