Entangled States Are Harder to Transfer than Product States

Author:

Apollaro Tony J. G.ORCID,Lorenzo SalvatoreORCID,Plastina FrancescoORCID,Consiglio MirkoORCID,Życzkowski KarolORCID

Abstract

The distribution of entangled states is a key task of utmost importance for many quantum information processing protocols. A commonly adopted setup for distributing quantum states envisages the creation of the state in one location, which is then sent to (possibly different) distant receivers through some quantum channels. While it is undoubted and, perhaps, intuitively expected that the distribution of entangled quantum states is less efficient than that of product states, a thorough quantification of this inefficiency (namely, of the difference between the quantum-state transfer fidelity for entangled and factorized states) has not been performed. To this end, in this work, we consider n-independent amplitude-damping channels, acting in parallel, i.e., each, locally, on one part of an n-qubit state. We derive exact analytical results for the fidelity decrease, with respect to the case of product states, in the presence of entanglement in the initial state, for up to four qubits. Interestingly, we find that genuine multipartite entanglement has a more detrimental effect on the fidelity than two-qubit entanglement. Our results hint at the fact that, for larger n-qubit states, the difference in the average fidelity between product and entangled states increases with increasing single-qubit fidelity, thus making the latter a less trustworthy figure of merit.

Funder

IPAS+ (Internationalisation Partnership Awards Scheme+) QUEST project by the MCST

Tertiary Education Scholarships Scheme and from the Project QVAQT

Narodowe Centrum Nauki under the Quantera project

Foundation for Polish Science under the Team-Net project

MUR under PRIN Project

Publisher

MDPI AG

Subject

General Physics and Astronomy

Reference34 articles.

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Entanglemnt in nonlinear three-qubits Jaynes — Cummings;Vestnik of Samara University. Natural Science Series;2024-01-29

2. Entanglement is better teleported than transmitted;Physical Review D;2023-07-07

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