English

Spin alignment of vector mesons in heavy-ion collisions

Nuclear Theory 2023-08-09 v3 High Energy Physics - Phenomenology

Abstract

Polarized quarks and antiquarks in high-energy heavy-ion collisions can lead to the spin alignment of vector mesons formed by quark coalescence. Using the relativistic spin Boltzmann equation for vector mesons derived from Kadanoff-Baym equations with an effective quark-meson model for strong interaction and quark coalescence model for hadronizaton, we calculate the spin density matrix element ρ00\rho_{00} for ϕ\phi mesons and show that anisotropies of local field correlations or fluctuations with respect to the spin quantization direction lead to ϕ\phi meson's spin alignment. We propose that the local correlation or fluctuation of ϕ\phi fields is the dominant mechanism for the observed the ϕ\phi meson's spin alignment and its strength can be extracted from experimental data as functions of collision energies. The calculated transverse momentum dependence of ρ00\rho_{00} agrees with STAR's data. We further predict the azimuthal angle dependence of ρ00\rho_{00} which can be tested in future experiments.

Keywords

Cite

@article{arxiv.2205.15689,
  title  = {Spin alignment of vector mesons in heavy-ion collisions},
  author = {Xin-Li Sheng and Lucia Oliva and Zuo-Tang Liang and Qun Wang and Xin-Nian Wang},
  journal= {arXiv preprint arXiv:2205.15689},
  year   = {2023}
}

Comments

ReVTex 4.1, 14 pages, 4 figures. A large part of the paper has been rewritten with the focus on extracting local correlations or fluctuations of phi fields from STAR's data and predictions for dependences of $\rho_{00}$ on the transverse momentum and azimuthal angle