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February 7, 2026Nature1 citations

Measuring spin correlation between quarks during QCD confinement

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BAB. E. AboonaJAJ. AdamLAL. Adamczyk

Key Points

  • The study aims to explore the spin correlation between quarks during QCD confinement and its implications for quantum chromodynamics.
  • High-energy proton–proton collisions were analyzed.
  • Measurements were made by the STAR experiment at RHIC.
  • The spin correlation was investigated in Lambda anti-Lambda hyperon pairs.
  • A relative polarization signal of 18 ± 4% was observed.
  • The spin correlations were found to vanish when hyperon pairs were widely separated in angle.
  • The findings link quark pairs from the QCD vacuum to hadron production.

Abstract

The vacuum is now understood to have a rich and complex structure, characterized by fluctuating energy fields 1 and a condensate of virtual quark–antiquark pairs. The spontaneous breaking of the approximate chiral symmetry 2, signalled by the nonvanishing quark condensate qq, is dynamically generated through topologically nontrivial gauge configurations such as instantons 3. The precise mechanism linking the chiral symmetry breaking to the mass generation associated with quark confinement 4 remains a profound open question in quantum chromodynamics (QCD) —the fundamental theory of strong interaction. High-energy proton–proton collisions could liberate virtual quark–antiquark pairs from the vacuum that subsequently undergo confinement to form hadrons, whose properties could serve as probes into QCD confinement and the quark condensate. Here we report evidence of spin correlations in hyperon pairs inherited from spin-correlated strange quark–antiquark virtual pairs. Measurements by the STAR experiment at the Relativistic Heavy Ion Collider (RHIC) at Brookhaven National Laboratory reveal a relative polarization signal of (18 ± 4) % that links the virtual spin-correlated quark pairs from the QCD vacuum to their final-state hadron counterparts. Crucially, this correlation vanishes when the hyperon pairs are widely separated in angle, consistent with the decoherence of the quantum system. Our findings provide a new experimental model for exploring the dynamics and interplay of quark confinement and entanglement.

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Cite This Study

Aboona et al. (2026) studied this question.

synapsesocial.com/papers/698692e89d267392364c9941https://doi.org/10.1038/s41586-025-09920-0
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