In search of chiral magnetic effect: separating flow-driven background effects and quantifying anomaly-induced charge separations
arXiv:1512.06602 · doi:10.1016/j.nuclphysa.2016.01.064
Abstract
We report our recent progress on the search of Chiral Magnetic Effect (CME) by developing new measurements as well as by hydrodynamic simulations of CME and background effects, with both approaches addressing the pressing issue of separating flow-driven background contributions and possible CME signal in current heavy ion collision measurements.
Proceedings of Quark Matter 2015, (Sep. 27-Oct. 3, Kobe, Japan)
References in corpus (4)
- Chiral Magnetic and Vortical Effects in High-Energy Nuclear Collisions --- A Status Report
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- Azimuthal correlations from transverse momentum conservation and possible local parity violation
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- Non-equilibrium study of the Chiral Magnetic Effect from real-time simulations with dynamical fermions
- Effective description of hot QCD medium in strong magnetic field and longitudinal conductivity
- Transport coefficients of hot magnetized QCD matter beyond the lowest Landau level approximation
- New developments in relativistic magnetohydrodynamics
- Shear Viscosity of Quark-Gluon Plasma in Weak Magnetic Field in Perturbative QCD: Leading Log
- Bulk viscosity of a hot QCD/QGP medium in strong magnetic field within relaxation-time approximation
- Heavy quark dynamics in a hot magnetized QCD medium
- Electrical conductivity of a hot and dense QGP medium in a magnetic field
- Longitudinal conductivity of hot magnetized collisional QCD medium in the inhomogeneous electric field
- Chiral symmetry breaking in a semi-localized magnetic field