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Quasi-Probability Distribution Functions for a Single Trapped Ion Interacting with a Mixed Laser Field

Research Abstract
We give a fully analytical description of the dynamics of the quasi-probability distribution (Q-PD) functions for any model describing a single two-level qubit interacting with a field. The Wigner function at time (t = 0) and Q function for a pure state as an initial field state are studied. But, in this paper, the temporal behavior of the Q-PD functions for a coherent superposition state (SS) and a statistical mixture of coherent states (SM) for the interaction between a single ion and laser field are investigated. It is found that, the temporal behavior of the Q-PD functions is in very good agreement with its counterpart for the entanglement. If the curve of the entanglement between the trapped ion (specially for the second red sideband) and laser field are known, we can expect the shape of the Q-PD functions.
Research Authors
H. A. Hessian and A.-B. A. Mohamed
Research Department
Research Journal
Laser Physics
Research Member
Research Pages
PP. 1217-1223
Research Rank
1
Research Vol
Vol. 18, No. 10
Research Website
http://www.springerlink.com/content/1p403qg42m462843/
Research Year
2008

Quasi-Probability Distribution Functions for a Single Trapped Ion Interacting with a Mixed Laser Field

Research Abstract
We give a fully analytical description of the dynamics of the quasi-probability distribution (Q-PD) functions for any model describing a single two-level qubit interacting with a field. The Wigner function at time (t = 0) and Q function for a pure state as an initial field state are studied. But, in this paper, the temporal behavior of the Q-PD functions for a coherent superposition state (SS) and a statistical mixture of coherent states (SM) for the interaction between a single ion and laser field are investigated. It is found that, the temporal behavior of the Q-PD functions is in very good agreement with its counterpart for the entanglement. If the curve of the entanglement between the trapped ion (specially for the second red sideband) and laser field are known, we can expect the shape of the Q-PD functions.
Research Authors
H. A. Hessian and A.-B. A. Mohamed
Research Department
Research Journal
Laser Physics
Research Pages
PP. 1217-1223
Research Rank
1
Research Vol
Vol. 18, No. 10
Research Website
http://www.springerlink.com/content/1p403qg42m462843/
Research Year
2008

Influence of Phase Damping on the Entanglement for the Damped JC Model in the Pure and Mixed States

Research Abstract
In this article, we investigate the effects of phase damping on the temporal evolution of different entanglement measurements and the amount of entanglement for the damped Jaynes-Cummings model. The master equation is solved for any initial state in the two-level atom. Superpositions of two coherent states (π/2 or π out of phase) and their statistical mixture state are taken as initial states when a phase-damped cavity is taken into account.
Research Authors
A.-S. F. Obada, H. A. Hessian, and A.-B. A. Mohamed
Research Department
Research Journal
Laser Physics
Research Pages
PP. 1111–1117
Research Rank
1
Research Vol
Vol. 18, No. 9
Research Website
http://www.springerlink.com/content/u555n03845767087/
Research Year
2008

Influence of Phase Damping on the Entanglement for the Damped JC Model in the Pure and Mixed States

Research Abstract
In this article, we investigate the effects of phase damping on the temporal evolution of different entanglement measurements and the amount of entanglement for the damped Jaynes-Cummings model. The master equation is solved for any initial state in the two-level atom. Superpositions of two coherent states (π/2 or π out of phase) and their statistical mixture state are taken as initial states when a phase-damped cavity is taken into account.
Research Authors
A.-S. F. Obada, H. A. Hessian, and A.-B. A. Mohamed
Research Department
Research Journal
Laser Physics
Research Member
Research Pages
PP. 1111–1117
Research Rank
1
Research Vol
Vol. 18, No. 9
Research Website
http://www.springerlink.com/content/u555n03845767087/
Research Year
2008

Effect of phase-damped cavity on dynamics of tangles of a nondegenerate two-photon JC model

Research Abstract
A two-mode cavity field coupled to a two-level atom and damped by the environment through a phasedamped process is considered. For a chosen initial state, the effects of phase damping on the purity loss of the global system and different bipartite partitions of the system (atom–two modes, mode–(atom– mode)) through the tangles are considered. In particular, the effect of phase damping on the amount of entanglement between atom and field is evaluated by the negativity.
Research Authors
A.-S.F. Obada , H.A. Hessian , A.-B.A. Mohamed
Research Department
Research Journal
Optics Communications
Research Member
Research Pages
PP. 5189–5193
Research Rank
1
Research Website
http://iopscience.iop.org/0953-4075/41/13/135503
Research Year
2008

Entropy and entanglement in the Jaynes–Cummings model with effects of cavity damping

Research Abstract
The temporal evolution of entanglement for a single-mode field interacting with a two-level atom via intensity-dependent coupling in the off-resonant case has been studied, where the leakage of photon through the cavity is taken into account. The effects of cavity damping on the coherence properties of the atom and the field are studied. The amount of entanglement is compared with the total correlations. It is found that the atom–field system is inhibited from going into a pure state in the off-resonant case.
Research Authors
A-S F Obada, H A Hessian and A-B A Mohamed
Research Department
Research Journal
PHYSICS B: ATOMIC, MOLECULAR AND OPTICAL PHYSICS
Research Rank
1
Research Website
http://iopscience.iop.org/0953-4075/41/13/135503
Research Year
2008

Entropy and entanglement in the Jaynes–Cummings model with effects of cavity damping

Research Abstract
The temporal evolution of entanglement for a single-mode field interacting with a two-level atom via intensity-dependent coupling in the off-resonant case has been studied, where the leakage of photon through the cavity is taken into account. The effects of cavity damping on the coherence properties of the atom and the field are studied. The amount of entanglement is compared with the total correlations. It is found that the atom–field system is inhibited from going into a pure state in the off-resonant case.
Research Authors
A-S F Obada, H A Hessian and A-B A Mohamed
Research Department
Research Journal
PHYSICS B: ATOMIC, MOLECULAR AND OPTICAL PHYSICS
Research Member
Research Rank
1
Research Website
http://iopscience.iop.org/0953-4075/41/13/135503
Research Year
2008

Entanglement and Its Dynamics with Atomic Spontaneous Decay

Research Abstract
The atomic decay for a two-level atom interacting with a single mode of electromagnetic field is considered. For a chosen initial state, the exact solution of the master equation is found. Therefore, effect of the atomic damping on entanglement (purity loss), degree of entanglement by the negativity, mutual information and atomic coherence through the master equation are studied.
Research Authors
H. A. Hessian, A. -B. A. Mohamed
Research Department
Research Journal
Chinese Physics Letters
Research Rank
1
Research Vol
Vol. 25, No.7
Research Website
http://iopscience.iop.org/0256-307X/25/7/044/
Research Year
2008

Entanglement and Its Dynamics with Atomic Spontaneous Decay

Research Abstract
The atomic decay for a two-level atom interacting with a single mode of electromagnetic field is considered. For a chosen initial state, the exact solution of the master equation is found. Therefore, effect of the atomic damping on entanglement (purity loss), degree of entanglement by the negativity, mutual information and atomic coherence through the master equation are studied.
Research Authors
H. A. Hessian, A. -B. A. Mohamed
Research Department
Research Journal
Chinese Physics Letters
Research Member
Research Rank
1
Research Vol
Vol. 25, No.7
Research Website
http://iopscience.iop.org/0256-307X/25/7/044/
Research Year
2008

The effects of thermal photons on entanglement dynamics for a dispersive Jaynes–Cummings model

Research Abstract
Using the master equation, we give a fully analytical description of the dynamics of an atom dispersively coupled to a field mode in a dissipative cavity. The effects of thermal photons ( ¯n = 0) on entanglement and coherence loss are investigated. It is found that the field is inhibited from going into a pure state and coherence is lost faster than in the case of zero temperature ( ¯n = 0).
Research Authors
A.-S.F. Obada , H.A. Hessian , A.-B.A. Mohamed
Research Department
Research Journal
Physics Letters A
Research Pages
PP. 3699–3706
Research Rank
1
Research Vol
Vol. 372, No. 20
Research Website
http://www.sciencedirect.com/science?_ob=ArticleURL&_udi=B6TVM-4RXJYM3-3&_user=1052409&_coverDate=05%2F12%2F2008&_rdoc=1&_fmt=high</br>&_orig=search&_sort=d&_docanchor=&view=c&_searchStrId=1432988170</br>&_rerunOrigin=google&_acct=C000051060&_version
Research Year
2008
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