Neutron Skin Effects on Particle Emission in Heavy-Ion Collisions: A Topic Review with Astrophysical and Nuclear Structure Connections
nucl-th, astro-ph.HE, hep-ph, nucl-ex
Submitted: 2026-09-14
Updated: 2026-09-14
Comments: 59 pages with 60 figures
Project page: https://fair-center.eu
License: http://creativecommons.org/licenses/by/4.0/
The gist: The neutron skin, defined by the difference between neutron and proton root-mean-square radii, is a characteristic manifestation of isospin asymmetry and an important probe of the isovector nuclear
Terminology
Abstract
The neutron skin, defined by the difference between neutron and proton root-mean-square radii, is a characteristic manifestation of isospin asymmetry and an important probe of the isovector nuclear interaction. This focused review examines how neutron skins influence particle emission and collective dynamics in heavy-ion collisions, from the Fermi-energy regime to ultra-relativistic energies. By modifying the initial neutron and proton density profiles, the neutron skin affects the isospin composition and geometry of the participant region, pre-equilibrium emission, particle production, fragment formation, and collective flow. We review neutron-to-proton and /cubed yield ratios, light clusters, pion ratios, bremsstrahlung photons, isoscaling and fragment momentum distributions, and neutron-proton differential flow and momentum observables, emphasizing their interplay with the symmetry energy and transport dynamics. At high energies, neutron skins also modify the initial geometry, eccentricities, multiplicities, and anisotropic flows in isobar and heavy-nucleus collisions. We discuss the challenge of disentangling these effects from deformation, surface diffuseness, shell structure, clustering, and model dependence. Broader connections to parity-violating electron scattering, dipole responses, coherent elastic neutrino-nucleus scattering, SRC-induced proton skins in momentum space, and neutron-star observables are also explored. Finally, we highlight opportunities from radioactive beams, improved collision experiments, microscopic many-body and transport calculations, and Bayesian inference. Combining multiple reaction systems and observables with complementary nuclear-structure and astrophysical information will be essential for quantitatively constraining neutron skins and the density dependence of the symmetry energy.
Sources
- Long Range Plan: Dense matter theory for heavy-ion collisions and neutron stars
- Isotopic analysis of 295 MeV proton scattering off $^{204,206,208}$Pb for improvement of neutron densities and radii
- A NICER view of PSR J1614 - 2230: a massive and compact millisecond pulsar
- The Radius of the Neutron Star PSR J0614-3329 from NICER Data
- Gluons and the quark sea at high energies: distributions, polarization, tomography
- Nuclear Equation of State and Single-nucleon Potential from Gogny-like Energy Density Functionals Encapsulating Effects of Nucleon-nucleon Short-range Correlations
- Neutron Star vs Quark Star in the Multimessenger Era
- On the Possibility of a Strong First-Order Phase Transition in Neutron Stars
- A New Scaling of Neutron Star Tidal Deformability for Directly Probing the Core Equation of State
- Revisiting the Possibility of a Sharp Phase Transition in Cold Neutron Stars
- High-Density Sound Speed and Post-Merger Dynamics
- Neutron Skin from Conserved Charge Measurements at Collider Experiments
- Comment on QED Corrections to the Parity Violating Asymmetry in High-Energy Electron-Nucleus Scattering
- Universal imprinting of short-range correlations in relativistic heavy-ion collisions
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