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Resilience of quantum teleportation fidelity for bipartite mixed states near Schwarzschild and Dilaton black holes
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DOI:10.1088/1361-6382/ae60da.png)
Abstract
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We investigate the robustness of quantum teleportation in the presence of strong gravitational fields by analyzing bipartite mixed states derived from tripartite GHZ and W-class states near black hole event horizons. Considering a scenario where two observers approach the horizon of either a Schwarzschild or a Garfinkle–Horowitz–Strominger Dilaton black hole while a third remains in flat space, we quantify the teleportation fidelity of the resulting bipartite channels after tracing out one party. Through the quantization of Dirac fields and Bogoliubov transformations, we compute the teleportation fidelity under the influence of Hawking radiation and spacetime curvature. Our results show that while entanglement degrades, teleportation fidelity remains above the classical threshold of for channels derived from W-class states, but not for GHZ-derived states. This indicates that quantum teleportation can remain feasible near black holes provided the initial entangled state retains useful bipartite entanglement.
Keywords:
quantum teleportation
black hole
entanglement
teleportation fidelity
bipartite mixed states
Journal
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3.7
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1.3W
Citations:
3.0W
