Generation and nonclassicality of entangled states via the interaction of two three-level atoms with a quantized cavity field assisted by a driving external classical field
H. R. Baghshahi, M. K. Tavassoly, S. J. Akhtarshenas

TL;DR
This paper analytically investigates the generation of entangled states and their nonclassical properties in a system of two three-level atoms interacting with a quantized cavity field and an external classical drive, revealing controllable quantum features.
Contribution
It provides exact solutions for the atom-field dynamics in three-level atomic systems and analyzes how an external classical field influences nonclassicality and entanglement.
Findings
Nonclassicality is more prominent in the Xi-type atomic system.
External classical field can control entanglement and quantum statistics.
Negativity fully captures entanglement in the Lambda-type system.
Abstract
The interaction of two identical three-level atoms of the types , and with a quantized cavity field as well as a driving external classical field is studied. Under two certain unitary transformations, the system is converted to a typical form of the Jaynes-Cummings model for two three-level atoms. The exact analytical solutions of the wave function for different considered atom-field systems are exactly obtained with the help of the Laplace transform technique, when the atoms are initially prepared in the topmost excited state and the quantized field is in a coherent state. In order to examine the nonclassicality features of the deduced states, the dynamics of the entanglement between subsystems is discussed via two well-known measures, namely, von Neumann entropy of the reduced state and negativity. In addition, we pay attention to the temporal behaviour of quantum…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum optics and atomic interactions · Quantum Mechanics and Applications
