Particle Production in Strong Electromagnetic Fields in Relativistic Heavy-Ion Collisions
Рождение частиц в сильных электромагнитных полях при столкновениях релятивистских тяжёлых ионов
2013-01-01
SCID: 54.1/yckhujqw
Discuss with AI
azimuthal anisotropyquark-gluon plasma conductivityrelativistic heavy-ion collisionsstrong electromagnetic fieldssynchrotron radiation
Figures from the paper
Abstract (AI)
I review the origin and properties of electromagnetic fields produced in heavy-ion collisions. The field strength immediately after a collision is proportional to the collision energy and reaches ~ m π 2 at RHIC and ~ 10 m π 2 at LHC. I demonstrate by explicit analytical calculation that after dropping by about one-two orders of magnitude during the first fm/c of plasma expansion, it freezes out and lasts for as long as quark-gluon plasma lives as a consequence of finite electrical conductivity of the plasma. Magnetic field breaks spherical symmetry in the direction perpendicular to the reaction plane, and therefore all kinetic coefficients are anisotropic. I examine viscosity of QGP and show that magnetic field induces azimuthal anisotropy on plasma flow even in spherically symmetric geometry. Very strong electromagnetic field has an important impact on particle production. I discuss the problem of energy loss and polarization of fast fermions due to synchrotron radiation, consider photon decay induced by magnetic field, elucidate J / ψ dissociation via Lorentz ionization mechanism, and examine electromagnetic radiation by plasma. I conclude that all processes in QGP are affected by strong electromagnetic field and call for experimental investigation.
Key Findings
1
Electromagnetic fields immediately after heavy-ion collisions scale with collision energy, reaching approximately mπ² at RHIC and 10mπ² at the LHC.
2
Magnetic fields break spherical symmetry and induce anisotropic kinetic coefficients, including azimuthal flow anisotropy even in initially spherically symmetric plasma.
3
Strong electromagnetic fields can significantly modify particle production through fermion synchrotron radiation, magnetic-field-induced photon decay, and Lorentz-ionization dissociation of J/ψ.
4
The abstract argues that electromagnetic fields affect all QGP processes and motivates dedicated experimental investigation.
5
The field decreases by one to two orders of magnitude during the first fm/c, then persists for the QGP lifetime because of finite electrical conductivity.
Research Object
Strong electromagnetic fields in quark-gluon plasma produced in relativistic heavy-ion collisions
Research Subject
The effects of field persistence and anisotropy on QGP transport, plasma flow, particle production, fermion energy loss and polarization, photon decay, J/ψ dissociation, and electromagnetic radiation
Publication Details
Publication Date
2013-01-01
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest