English

From Hyperons to Hypernuclei: A New Route to Unravel Proton Spin Polarization

Nuclear Theory 2025-08-25 v4 High Energy Physics - Phenomenology

Abstract

Ultra-relativistic nuclear collisions create the quark-gluon plasma (QGP) known as the hottest, least viscous, and most vortical fluid ever produced in terrestrial laboratories. Its vortical structure has been uncovered through the spin polarization of Lambda (Λ\Lambda) hyperons, attributed to the spin-orbit coupling that transfers the system's orbital angular momentum to the quark spin, which is then inherited by hadrons via quark recombination or coalescence. However, Λ\Lambda polarization reflects primarily the strange-quark component, leaving the spin dynamics of the up and down quarks largely unexplored. Although the proton is an ideal probe, its stability makes direct measurements experimentally challenging. Here, we propose to unravel proton spin polarization via hypertriton (Λ3H^3_\Lambda \text{H}) measurements, exploiting the fact that spin information is preserved when polarized nucleons and Λ\Lambda coalesce to form hypertriton. We show that, over a broad range of collision energies, the polarizations of proton, Λ\Lambda, and hypertriton are related by a simple linear scaling law. Since both Λ\Lambda and hypertriton polarizations can be measured via their self-analyzing weak decays, this linear relation provides a practical experimental avenue for accessing spin polarizations of protons and neutrons-the dominant baryonic degrees of freedom in nuclear collisions.

Keywords

Cite

@article{arxiv.2508.12193,
  title  = {From Hyperons to Hypernuclei: A New Route to Unravel Proton Spin Polarization},
  author = {Dai-Neng Liu and Yun-Peng Zheng and Wen-Hao Zhou and Jin-Hui Chen and Che Ming Ko and Yu-Gang Ma and Kai-Jia Sun and Song Zhang},
  journal= {arXiv preprint arXiv:2508.12193},
  year   = {2025}
}

Comments

11 pages, 3 figures