Continuous variable teleportation with Non-Gaussian resources in the characteristic function representation
L. Albano Farias

TL;DR
This paper develops a characteristic function formalism for continuous variable quantum teleportation, demonstrating that optimized non-Gaussian resources improve fidelity and robustness against noise compared to Gaussian resources.
Contribution
Introduces a CF-based formalism for CV teleportation with non-Gaussian resources and shows their advantages over Gaussian states in fidelity and noise resilience.
Findings
Optimized non-Gaussian resources yield higher teleportation fidelity.
Non-Gaussian resources are more robust to thermal noise.
Bell-like non-Gaussian states outperform Gaussian states in fidelity.
Abstract
A characteristic function (CF) based formalism for the representation of quantum optical operations pertaining to the Continuous Variable (CV) quantum teleportation protocol for general resource and input states is introduced; allowing for modifications of basic CV teleportation; such as lossy homodyne measurements and the presence of thermal noise. The output state CF is given as a product of the CFs of resource and input. The use of non-Gaussian resources is studied by means of a general class of two-mode squeezed Bell-like states that include as special cases Gaussian, non-Gaussian and "degaussified" resources; it is shown that Bell-like resources optimized ("tailored") for maximum fidelity yield a remarkable improvement in fidelity of teleportation for the studied input states. A further generalization is introduced with two-mode squeezed superpositions of Fock states including…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Mechanics and Applications · Quantum Computing Algorithms and Architecture
