Magnetism and rotation in relativistic field theory
arXiv:1504.05826 · doi:10.1093/ptep/ptw128
Abstract
We investigate the analogy between magnetism and rotation in relativistic theory. In nonrelativistic theory, the exact correspondence between magnetism and rotation is established in the presence of an external trapping potential. Based on this, we analyze relativistic rotation under external trapping potentials. A Landau-like quantization is obtained by considering an energy-dependent potential.
8 pages, 1 figure
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- Shear viscosity and electrical conductivity of rotating quark matter in Nambu--Jona-Lasinio Model
- Shear Viscosity and Electrical Conductivity of Rotating Nuclear Medium in Hadron Resonance Gas and Nambu-Jona Lasinio Models
- Chiral vortical conductivities and the moment of inertia of a rigidly rotating Fermi gas