Atomic and entanglement dynamics in the mixed squeezed coherent state version of the Jaynes-Cummings interaction
Koushik Mandal, Pooja Jethwani, M. Venkata Satyanarayana

TL;DR
This paper investigates how mixed squeezed coherent states influence atom-field interactions in the Jaynes-Cummings model, revealing distinct effects of squeezing on photon statistics, atomic inversion, and entanglement compared to pure states.
Contribution
It introduces the analysis of mixed squeezed coherent states in the Jaynes-Cummings model, contrasting their effects with pure states on quantum dynamics.
Findings
Squeezing localizes photon counting distribution in pure states but causes oscillations in mixed states.
Squeezing enhances revivals and irregularity in atomic inversion and entanglement for pure states.
In mixed states, squeezing significantly alters collapse-revival patterns and entanglement dynamics.
Abstract
Coherent signal containing squeezed noise in a mixed state of radiation field is considered here as a non-Gaussian mixture of a coherent state density operator and a squeezed state density operator, as opposed to the usual well known squeezed coherent state. Both these states are `quantum' noise-included signal states. Effects of these two distinct ways of adding squeezing to a coherent state are compared and contrasted. The main objective of this work is to study the mixed state version of the Jaynes-Cummings model in the context of a two-level atom interacting with a mixed field state of a squeezed vacuum and a coherent state. The pure squeezed coherent state (PSCS) and the mixed squeezed coherent state (MSCS) are used as the states of the radiation field. The photon-counting distribution (PCD), the atomic inversion and the entanglement dynamics of atom-field interaction for both the…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Mechanics and Applications · Quantum Computing Algorithms and Architecture
