Dynamics of physical properties of a single-mode quantized field nonlinearly and non-resonantly interacting with two V-type three-level atoms passing consecutively through a cavity
arXiv:2209.00419 · doi:10.1016/j.optcom.2015.06.008
Abstract
In this paper we address the analytical solution of the non-resonant interaction between two identical V-type three-level atoms passing consecutively through a single-mode cavity field in the presence of intensity-dependent coupling. By considering an identical initial condition for both atoms and an initial coherent field, we find the analytical solution of the state vector of the entire atom-field system. Accordingly, we could carefully investigate the influence of various parameters in the circumstances of the interacting system on different physical quantities such as the atomic population inversion, atom-field entanglement, field squeezing, sub-Poissonian statistics and the Wigner quasi-probability distribution function. In detail, we discuss numerically the influences of the detuning parameters and a particular nonlinearity function on the mentioned quantities and demonstrate that they have substantial effects on the temporal behavior of the above-mentioned nonclassical properties.
References in corpus (6)
- Entanglement, quantum statistics and squeezing of two -type three-level atoms interacting nonlinearly with a single-mode field
- Tripartite entanglement dynamics and entropic squeezing of a three-level atom interacting with a bimodal cavity field
- Dynamics of entanglement of a three-level atom in motion interacting with two coupled modes including parametric down conversion
- Entropy squeezing and atomic inversion in the -photon Jaynes-Cummings model in the presence of Stark shift and Kerr medium: full nonlinear approach
- Quantum entanglement and position-momentum entropic squeezing of a moving Lambda-type three-level atom interacting with a single-mode quantized field with intensity-dependent coupling
- Nonclassicality generated by propagation of atoms through a cavity field