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Observation of quantum entanglement in $\Lambda \bar{\Lambda}$ pair production via electron-positron annihilation

High Energy Physics - Phenomenology 2025-05-16 v1

Abstract

We report the observation of quantum entanglement in ΛΛˉ\Lambda\bar{\Lambda} pairs produced via electron-positron annihilation, specifically through the decay J/ψΛΛˉJ/\psi \to \Lambda\bar{\Lambda}. By analyzing the angular correlations of the subsequent weak decays Λpπ\Lambda \to p\pi^- and Λˉpˉπ+\bar{\Lambda} \to \bar{p}\pi^+, we derive normalized observables Oi (i=0,1,,4)\mathcal{O}_i~(i=0,1,\ldots,4) that distinguish entangled states from separable ones. Theoretical predictions for these observables are established, with violations of separable-state bounds serving as unambiguous signatures of entanglement. Experimental measurements at cosθΛ=0\cos\theta_\Lambda = 0 yield O1minObserved=0.7374±0.0011±0.0016\mathcal{O}_{1\text{min}}^{\text{Observed}} = -0.7374\pm 0.0011\pm 0.0016, significantly exceeding the classical limit of 0.5-0.5 with a statistical significance of 124.9σ\sigma. For cosθΛ<0.4883\left|\cos\theta_\Lambda\right|<0.4883, the observed O1Observed\mathcal{O}_{1}^{\text{Observed}} consistently exhibits O1Observed<12\mathcal{O}_{1}^{\text{Observed}} < -\frac{1}{2} with a statistical significance of at least 5σ\sigma. Since 69.3%69.3\% of the decay events involving Λp+π\Lambda\to p+\pi^- and Λˉpˉ+π+\bar{\Lambda}\to \bar{p}+\pi^+ are spacelike-separated, our results confirming the persistence of quantum entanglement in the ΛΛˉ\Lambda\bar{\Lambda} system provide strong support for the non-locality of quantum mechanics. The findings are consistent with theoretical expectations under decoherence-free conditions, highlighting the potential of hyperon pairs as probes for fundamental quantum phenomena.

Keywords

Cite

@article{arxiv.2505.09931,
  title  = {Observation of quantum entanglement in $\Lambda \bar{\Lambda}$ pair production via electron-positron annihilation},
  author = {Junle Pei and Xiqing Hao and Xiaochuan Wang and Tianjun Li},
  journal= {arXiv preprint arXiv:2505.09931},
  year   = {2025}
}

Comments

15 pages, 2 figures

R2 v1 2026-06-28T23:33:54.422Z