Relativistic decomposition of the orbital and the spin angular momentum in chiral physics and Feynman's angular momentum paradox
arXiv:2001.00359 · doi:10.1007/978-3-030-71427-7_12
Abstract
Over recent years we have witnessed tremendous progresses in our understanding on the angular momentum decomposition. In the context of the proton spin problem in high energy processes the angular momentum decomposition by Jaffe and Manohar, which is based on the canonical definition, and the alternative by Ji, which is based on the Belinfante improved one, have been revisited under light shed by Chen et al. leading to seminal works by Hatta, Wakamatsu, Leader, etc. In chiral physics as exemplified by the chiral vortical effect and applications to the relativistic nucleus-nucleus collisions, sometimes referred to as a relativistic extension of the Barnett and the Einstein--de Haas effects, such arguments of the angular momentum decomposition would be of crucial importance. We pay our special attention to the fermionic part in the canonical and the Belinfante conventions and discuss a difference between them, which is reminiscent of a classical example of Feynman's angular momentum paradox. We point out its possible relevance to early-time dynamics in the nucleus-nucleus collisions, resulting in excess by the electromagnetic angular momentum.
16 pages, 3 figures, 1 table; contribution to Lecture Notes in Physics volume on "Strongly Interacting Matter under Rotation"; references added in revision
References in corpus (6)
- Reply to the Comment on "Spin and orbital angular momentum in gauge theories: Nucleon spin structure and multipole radiation revisited" [PRL 100:232002 (2008)]
- Spin and orbital angular momentum in gauge theories: Nucleon spin structure and multipole radiation revisited
- Fate of spin polarization in a relativistic fluid: An entropy-current analysis
- Thermodynamical inequivalence of quantum stress-energy and spin tensors
- Magnetic Field in the Charged Subatomic Swirl
- Einstein-de Haas Effect in a Dipolar Fermi Gas
Cited by in corpus (6)
- Foundations and Applications of Quantum Kinetic Theory
- Local and global polarization of hyperons across RHIC-BES energies: the roles of spin hall effect, initial condition and baryon diffusion
- Kubo formulae for first-order spin hydrodynamics
- Hydrodynamic helicity polarization in relativistic heavy ion collisions
- Recent developments in chiral and spin polarization effects in heavy-ion collisions
- Formalism of hydrodynamics with spin degrees of freedom