Improving the probabilistic quantum teleportation efficiency of arbitrary superposed coherent state using multipartite even and odd j-spin coherent states as resource
Meryem El Kirdi, Abdallah Slaoui, Hanane El Hadfi, Mohammed Daoud

TL;DR
This paper introduces a probabilistic quantum teleportation scheme for arbitrary superposed coherent states using multipartite even and odd j-spin coherent states, enhancing success probability and fidelity through repeated GHZ measurements.
Contribution
It presents a novel teleportation protocol employing multipartite spin coherent states and repeated measurements, improving efficiency even with non-maximally entangled resources.
Findings
Repeated GHZ measurements increase success probability
Teleportation fidelity is related to entanglement quantified by concurrence
Adjustable parameters optimize teleportation efficiency
Abstract
Quantum teleportation is one of the most important techniques for quantum information secure transmission. Using preshared entanglement, quantum teleportation is designed as a basic key in many quantum information tasks and features prominently in quantum technologies, especially in quantum communication. In this work, we provide a new probabilistic teleportation scheme for arbitrary superposed coherent states by employing the multipartite even and odd -spin coherent states as the entangled resource connecting Alice (sender) and Bob (receiver). Here, Alice possesses both even and odd spin coherent states and makes repeated GHZ states measurements (GHZSMs) on the pair of spins, consisting of () the unknown spin state and () one of the two coherent spin states, taken alternately, until reaching a quantum teleportation with maximal average fidelity. We provide the relationship…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum Mechanics and Applications
