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Trapped Ion Quantum Computing

Amending entanglement-breaking channels via intermediate unitary operations

arXiv
Authors: Álvaro Cuevas, Antonella De Pasquale, Andrea Mari, Adeline Orieux, Stefano Duranti, Marcello Massaro, Andrea Di Carli, Emanuele Roccia, José Ferraz, Fabio Sciarrino, Paolo Mataloni, Vittorio Giovannetti

Year

2017

Paper ID

44865

Status

Preprint

Abstract Read

~2 min

Abstract Words

107

Citations

N/A

Abstract

We report a bulk optics experiment demonstrating the possibility of restoring the entanglement distribution through noisy quantum channels by inserting a suitable unitary operation (filter) in the middle of the transmission process. We focus on two relevant classes of single-qubit channels consisting in repeated applications of rotated phase damping or rotated amplitude damping maps, both modeling the combined Hamiltonian and dissipative dynamics of the polarization state of single photons. Our results show that interposing a unitary filter between two noisy channels can significantly improve entanglement transmission. This proof-of-principle demonstration could be generalized to many other physical scenarios where entanglement-breaking communication lines may be amended by unitary filters.

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