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Universal, Unambiguous Concentration and Distillation of Bell pairs

Orsolya Kálmán1, Aurél Gábris2,1, Igor Jex2, and Tamás Kiss1

Phys. Rev. Lett. 135, 260202 – Published 24 December, 2025

DOI: https://doi.org/10.1103/rcx1-w6j7

Abstract

The ability of preparing perfect Bell pairs with a practical scheme is of great relevance for quantum communication as well as distributed quantum computing. We propose a scheme which probabilistically, but universally and unambiguously produces the |Φ+⟩ Bell pair from four copies of qubit pairs initially in the same unknown pure quantum state. The same scheme, extended to eight qubit pairs initially in the same, moderately mixed quantum state, unambiguously produces the |Φ+⟩ Bell pair with quadratically suppressed noise. The core step of the proposed scheme consists of a pair of local two-qubit operations applied at each of the two distant locations, followed by a partial projective measurement and postselection at each party, with results communicated classically. While the scheme resembles standard entanglement distillation protocols, it achieves success within just three iterations, making it attractive for real-world applications.

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