Measurement Uncertainty, Purity, and Entanglement Dynamics of Maximally Entangled Two Qubits Interacting Spatially with Isolated Cavities: Intrinsic Decoherence Effect
Abstract
:1. Introduction
2. The Physical Model and Its Dynamics
2.1. Physical Description
2.2. The Solution of the Milburn Equation
3. Quantum Information Resources Measures
- Entropic uncertaintyFor incompatible observables P and Q, Bob’s uncertainty regarding the two qubits (A and B) measurement outcome is given by [49,50]:
- Two-charge-qubit entropy purity ()Here, entropy is used to quantify the amount of two-charge-qubit purity/mixedness [51].The qubit–qubit entropy is defined by:
- Two-qubit negativity entanglement ():The negativity is a good entanglement monotonic measure. In the current case, is used to investigate the two-charge-qubit entanglement [52]. It is equal to the absolute sum of the negative eigenvalues of the density matrix that is the partial transpose of the two-charge-qubit density matrix with respect to subsystem A. The elements of are given by:When , the state is separable. The function is used to estimate the entanglement amount of the quantum state.
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Mohamed, A.-B.A.; Rahman, A.U.; Eleuch, H. Measurement Uncertainty, Purity, and Entanglement Dynamics of Maximally Entangled Two Qubits Interacting Spatially with Isolated Cavities: Intrinsic Decoherence Effect. Entropy 2022, 24, 545. https://doi.org/10.3390/e24040545
Mohamed A-BA, Rahman AU, Eleuch H. Measurement Uncertainty, Purity, and Entanglement Dynamics of Maximally Entangled Two Qubits Interacting Spatially with Isolated Cavities: Intrinsic Decoherence Effect. Entropy. 2022; 24(4):545. https://doi.org/10.3390/e24040545
Chicago/Turabian StyleMohamed, Abdel-Baset A., Atta Ur Rahman, and Hichem Eleuch. 2022. "Measurement Uncertainty, Purity, and Entanglement Dynamics of Maximally Entangled Two Qubits Interacting Spatially with Isolated Cavities: Intrinsic Decoherence Effect" Entropy 24, no. 4: 545. https://doi.org/10.3390/e24040545