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The generation rate of quantum gravity induced entanglement with multiple massive particles

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arxiv 2210.17259 v2 pith:TQ57RNSP submitted 2022-10-31 gr-qc quant-ph

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keywords setupentanglementparticlesgenerationgravitymassivemultiplequantum
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We investigate the generation rate of quantum gravity induced entanglement of masses(QGEM) in setup with multiple quantum massive particles, among of which only the gravity interaction due to the Newton potential is taken into account. When the distance between any two adjacent Stern-Gerlach (SG) devices is fixed, we consider all the possible configurations of the setup with the same number of particles. In particular, we systemically analyze the case of particle number n=4 and find that the prism setup with a massive particle at the center is the most efficient setup for the entanglement generation. This result can be extended to a system with multiple particles up to seven, where the entanglement efficiency is also enhanced in comparison with the setup with fewer particles. This work provides the strategy to construct the QGEM setup with the best generation rate of entanglement.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Bose-Marletto-Vedral experiment without observable spacetime superpositions

    quant-ph 2025-06 conditional novelty 6.0 of 10

    Locally classical mediators with non-locally tomographic couplings can generate entanglement, so the BMV experiment does not by itself prove spacetime is quantum.

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