Collective dynamics of polarized spin-half fermions in relativistic heavy-ion collisions
Rajeev Singh

TL;DR
This paper develops a relativistic hydrodynamic framework incorporating spin degrees of freedom to better understand spin polarization phenomena in heavy-ion collisions, aligning some results with experimental data.
Contribution
It introduces a new hydrodynamic model with spin from kinetic theory, analyzing spin propagation and polarization evolution in relativistic heavy-ion collisions.
Findings
Transverse spin components propagate as waves.
Spin polarization evolution matches some experimental observations.
The model predicts spin-wave velocities for different statistics.
Abstract
Relativistic hydrodynamics has been quite successful in describing the properties of strongly-interacting matter produced in heavy-ion collision experiments. Recently, there has been a significant advancement in this field to explain the spin polarization of hadrons emitted in these processes. Although current models have successfully explained some of the experimental data based on spin-vorticity coupling, they still lack a clear understanding of differential measurements. This is an indication that the spin needs to be treated as an independent degree of freedom whose dynamics is not entirely bound to flow circulation. In particular, if the spin is a macroscopic property of the system, in equilibrium its dynamics should follow hydrodynamic laws. In this thesis, we develop a framework of relativistic perfect-fluid hydrodynamics which includes spin degrees of freedom from kinetic…
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Taxonomy
TopicsHigh-Energy Particle Collisions Research · Computational Physics and Python Applications · Quantum Chromodynamics and Particle Interactions
