Strongly interacting matter in extreme magnetic fields
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Magnetic fields are ubiquitous across different physical systems of current interest; from the
early Universe, compact astrophysical objects, and heavy-ion collisions to condensed matter
systems. A proper treatment of the effects produced by magnetic fields during the dynamical
evolution of these systems can help to understand observables that otherwise show puzzling
behavior. Furthermore, when these fields are comparable to or stronger than 𝛬QCD, they serve
as excellent probes to help elucidate the physics of strongly interacting matter under extreme
conditions of temperature and density. This work provides a detailed report that contains indepth analysis and expert insights into the specific topic of the effects of strong magnetic fields
on QED and QCD systems. In this sense, the report is intended as a white paper contribution
to the field. The subjects developed include the modification of meson static properties such
as masses and form factors, the chiral magnetic effect, the description of anomalous transport
coefficients, superconductivity in extreme magnetic fields, the properties of neutron stars, the
evolution of heavy-ion collisions, as well as effects on the QCD phase diagram. We describe
recent theory and phenomenological developments using effective models as well as LQCD
methods. The work was motivated by presentations and discussions during the ‘‘Workshop on
Strongly Interacting Matter in Strong Electromagnetic Fields’’ that took place in the European
Centre for Theoretical Studies in Nuclear Physics and Related Areas (ECT*) in the city of Trento,
Italy, September 25–29, 2023.
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ADHIKARI, Prabal et al. Strongly interacting matter in extreme magnetic fields. Progress in Particle and Nuclear Physics, Amsterdam, v. 146, e104199, 2026. Pt. 1. DOI: 10.48550/arXiv.2412.18632. Disponível em: https://www.sciencedirect.com/science/article/pii/S0146641025000468. Acesso em: 31 ago. 2026.