Speed of disentanglement in multi-qubit systems under depolarizing channel
Fu-Lin Zhang, Yue Jiang, Mai-Lin Liang

TL;DR
This paper analyzes how quickly entanglement disappears in multi-qubit systems under local depolarizing noise, revealing bounds, invariants, and the influence of different entanglement types on disentanglement speed.
Contribution
It provides analytical bounds and relations for disentanglement speed in multi-qubit systems, including new insights into the effects of entanglement invariants and robustness measures.
Findings
Disentanglement speed depends on initial entanglement and system size.
Analytical bounds for two-qubit systems are derived.
Disentanglement robustness scales inversely with the number of qubits for GHZ and W states.
Abstract
We investigate the speed of disentanglement in the multiqubit systems under the local depolarizing channel, in which each qubit is independently coupled to the environment. We focus on the bipartition entanglement between one qubit and the remaining qubits constituting the system, which is measured by the negativity. For the two-qubit system, the speed for the pure state completely depends on its entanglement. The upper and lower bounds of the speed for arbitrary two-qubit states, and the necessary conditions for a state achieving them, are obtained. For the three-qubit system, we study the speed for pure states, whose entanglement properties can be completely described by five local-unitary-transformation invariants. An analytical expression of the relation between the speed and the invariants is derived. The speed is enhanced by the the three-tangle which is the entanglement among the…
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