Chiral Magnetic conductivity
arXiv:0907.5007 · doi:10.1103/PhysRevD.80.034028
Abstract
Gluon field configurations with nonzero topological charge generate chirality, inducing P- and CP-odd effects. When a magnetic field is applied to a system with nonzero chirality, an electromagnetic current is generated along the direction of the magnetic field. The induced current is equal to the Chiral Magnetic conductivity times the magnetic field. In this article we will compute the Chiral Magnetic conductivity of a high-temperature plasma for nonzero frequencies. This allows us to discuss the effects of time-dependent magnetic fields, such as produced in heavy ion collisions, on chirally asymmetric systems.
10 pages, 4 figures
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- Gravitational Anomaly and Transport
- Chiral Magnetic Wave
- Magnetic-Field-Induced insulator-conductor transition in SU(2) quenched lattice gauge theory
- The chiral magnetic effect in hydrodynamical approach
- Chiral magnetic effect in lattice QCD with a chiral chemical potential
- On the Charge Separation Effect in Relativistic Heavy Ion Collisions
- Small x physics and RHIC data
- Charge Fluctuations from the Chiral Magnetic Effect in Nuclear Collisions
- On the Chiral Magnetic Effect in Soft-Wall AdS/QCD
- Some Field Theoretic Issues Regarding the Chiral Magnetic Effect
- Magnetic-field Induced Screening Effect and Collective Excitations
- P and CP Violation and New Thermalization Scenario in Heavy Ion Collisions
- Towards a quantum theory of chiral magnetic effect
- Noncommutativity and Lorentz Violation in Relativistic Heavy Ion Collisions