TY - JOUR
T1 - Exploring quasi-probability Husimi-distributions in nonlinear two trapped-ion qubits
T2 - intrinsic decoherence effects
AU - Al-Essa, Laila A.
AU - AL-Rezami, A. Y.
AU - Aldosari, F. M.
AU - Mohamed, A. B.A.
AU - Eleuch, H.
N1 - Publisher Copyright:
© 2024, The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.
PY - 2024/4
Y1 - 2024/4
N2 - The Husimi phase-space distribution is an efficient tool for studying quantum coherent states as it provides information on quantum-state features. The paper investigates the non-classicality and mixedness dynamics of two dipole trapped qubits beyond Lamb-Dicke regime. We analyze the Husimi distribution non-classicality and Wehrl entropy mixedness, which are substantially impacted by several physical characteristics that involve unitary ion-mode interaction, Lamb-Dicke nonlinearity, dipole two-qubit interaction, and intrinsic decoherence. Our results show that when these physical parameters grow, the phase-space information of the trapped-ion-qubit state becomes more sensitive, resulting in more von-Neumann/Wehrl entropy mixedness. The unitary ion-mode interaction, in particular, intensifies the von-Neumann/Wehrl entropy qubit’s mixedness, and the Husimi distribution coincides with the von-Neumann entropy qubit’s mixedness. Furthermore, the dipole interaction of the qubits considerably impacts and delays the emergence of the maximal von-Neumann/Wehrl entropy qubit’s mixedness.
AB - The Husimi phase-space distribution is an efficient tool for studying quantum coherent states as it provides information on quantum-state features. The paper investigates the non-classicality and mixedness dynamics of two dipole trapped qubits beyond Lamb-Dicke regime. We analyze the Husimi distribution non-classicality and Wehrl entropy mixedness, which are substantially impacted by several physical characteristics that involve unitary ion-mode interaction, Lamb-Dicke nonlinearity, dipole two-qubit interaction, and intrinsic decoherence. Our results show that when these physical parameters grow, the phase-space information of the trapped-ion-qubit state becomes more sensitive, resulting in more von-Neumann/Wehrl entropy mixedness. The unitary ion-mode interaction, in particular, intensifies the von-Neumann/Wehrl entropy qubit’s mixedness, and the Husimi distribution coincides with the von-Neumann entropy qubit’s mixedness. Furthermore, the dipole interaction of the qubits considerably impacts and delays the emergence of the maximal von-Neumann/Wehrl entropy qubit’s mixedness.
KW - Husimi function
KW - Intrinsic decoherence
KW - Trapped-ion qubit
UR - http://www.scopus.com/inward/record.url?scp=85183574852&partnerID=8YFLogxK
U2 - 10.1007/s11082-024-06284-z
DO - 10.1007/s11082-024-06284-z
M3 - Article
AN - SCOPUS:85183574852
SN - 0306-8919
VL - 56
JO - Optical and Quantum Electronics
JF - Optical and Quantum Electronics
IS - 4
M1 - 604
ER -