Protecting entanglement in superconducting qubits
Jing Zhang, Yu-xi Liu, Chun-Wen Li, Tzyh-Jong Tarn, Franco Nori

TL;DR
This paper presents a method to protect and optimize entanglement in two-qubit superconducting circuits by tuning controllable parameters, significantly reducing entanglement loss due to decoherence.
Contribution
It introduces a strategy to preserve entanglement in open quantum systems through parameter tuning, applicable to superconducting qubits.
Findings
Maximum stationary fidelity can reach about 2/3.
Maximum stationary concurrence can reach about 1/3.
Entanglement can be maintained for a long duration.
Abstract
When a two-qubit system is initially maximally-entangled, two independent decoherence channels, one per qubit, would greatly reduce the entanglement of the two-qubit system when it reaches its stationary state. We propose a method on how to minimize such a loss of entanglement in open quantum systems. We find that the quantum entanglement of general two-qubit systems with controllable parameters can be protected by tuning both the single-qubit parameters and the two-qubit coupling strengths. Indeed, the maximum fidelity between the stationary entangled state, , and the maximally-entangled state, , can be about , corresponding to a maximum stationary concurrence, , of about . This is significant because the quantum entanglement of the…
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