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Published on: June 8, 2018
Entanglement Degradation in Two Interacting Qubits Coupled to Dephasing Environments
Rahma Abdelmagid1, Khadija Alshehhi1, Gehad Sadiek1,2
1Department of Applied Physics and Astronomy, University of Sharjah, Sharjah 27272, United Arab Emirates.
Quantum decoherence, a major obstacle in quantum computing, is studied in two interacting qubits. Asymmetry and dephasing environments significantly impact entanglement decay rates across various initial states.
Area of Science:
- Quantum Information Science
- Quantum Computing
- Atomic Physics
Background:
- Decoherence, caused by qubit-environment interaction, leads to loss of quantum entanglement, hindering quantum computation.
- Asymmetric two-level atoms (qubits) and various dephasing environments are crucial factors in quantum system stability.
Purpose of the Study:
- To investigate the dynamics of entanglement in a system of two interacting asymmetric qubits under pure and correlated dephasing.
- To analyze how qubit asymmetry (frequency and coupling strength differences) and initial states influence entanglement decay.
Main Methods:
- Simulating a two-qubit system with varying interaction strengths, relative frequencies, and environmental coupling.
- Analyzing entanglement evolution for different initial states, including disentangled, Werner, and Bell states.
- Comparing the effects of pure (uncorrelated) and correlated dephasing environments.
Main Results:
- Qubit asymmetry significantly affects entanglement decay, with rates depending on the initial state and anisotropy.
- Increased frequency differences enhance entanglement decay for disentangled and Werner states, showing more persistence with higher anisotropy.
- Correlated dephasing can enhance entanglement for certain initial states (disentangled, anti-correlated Bell, Werner) but decay for others (correlated Bell).
Conclusions:
- Qubit asymmetry and dephasing environment characteristics critically influence quantum entanglement dynamics.
- Understanding these effects is vital for designing robust quantum computing architectures.
- Tailoring qubit properties and environment interactions can potentially preserve or even enhance entanglement.
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