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Measurement of the neutron lifetime and inverse quantum Zeno effect

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arxiv 1906.10024 v2 pith:54YPJKTN submitted 2019-06-24 hep-ph quant-ph

classification hep-phquant-ph
keywords neutronquantumdecaylifetimezenoeffectinverseneutrons
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Quantum mechanics predicts that the decay rate of unstable systems could be effectively modified by the process of the measurement of the survival probability. Depending on the intrinsic properties of the unstable system and the experimental setup for the observation, one could obtain the so called (direct) quantum Zeno and inverse quantum Zeno effects corresponding to a slowing down or a speeding up of the decay, respectively. We argue that the inverse quantum Zeno effect is in principle detectable at a percent level for the neutron decay in experiments with trapped ultracold neutrons. Conversely, this effect is basically undetectable in experiments in which the neutron lifetime is measured by measuring the decays of beams of neutrons. As a test of our claim, we propose a simple qualitative correlation between the number of neutrons in the trap and the neutron lifetime: the larger the number, the faster the decay. Finally we discuss also the presently available measurements of the neutron lifetime and address the issue of the possible discrepancy that has been reported among the results obtained by the different experimental techniques.

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Cited by 2 Pith papers

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

  1. Particles in finite volumes and a toy model of decaying neutrons

    hep-ph 2025-04 reject novelty 4.0 of 10

    A toy scalar model of neutron decay suggests finite-volume effects and initial neutron-daughter correlations can shift the predicted neutron lifetime to about 887 seconds, but the agreement is obtained by tuning a parameter.

  2. Modelling the inverse Zeno effect for the neutron decay

    hep-ph 2019-09 conditional novelty 4.0 of 10

    For two standard quantum measurement models, the inverse Zeno effect produces nearly identical corrections to the neutron decay width, supporting the earlier IZE explanation of the beam-trap lifetime discrepancy.

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