Position, spin and orbital angular momentum of a relativistic electron
arXiv:1706.01658 · doi:10.1103/PhysRevA.96.023622
Abstract
Motivated by recent interest in relativistic electron vortex states, we revisit the spin and orbital angular momentum properties of Dirac electrons. These are uniquely determined by the choice of the position operator for a relativistic electron. We overview two main approaches discussed in the literature: (i) the projection of operators onto the positive-energy subspace, which removes the zitterbewegung effects and correctly describes spin-orbit interaction effects, and (ii) the use of Newton-Wigner-Foldy-Wouthuysen operators based on the inverse Foldy-Wouthuysen transformation. We argue that the first approach [previously described in application to Dirac vortex beams in K.Y. Bliokh et al., Phys. Rev. Lett. 107, 174802 (2011)] has a more natural physical interpretation, including spin-orbit interactions and a nonsingular zero-mass limit, than the second one [S.M. Barnett, Phys. Rev. Lett. 118, 114802 (2017)].
10 pages, 1 table, to appear in Phys. Rev. A
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- Relativistic electron spin dynamics in a strong unipolar laser field
- The angular momentum of electron radiation in a uniform magnetic field
- Emission of twisted photons by a Dirac electron in a strong magnetic field
- Scattering of relativistic electrons and analogies with optical phenomena: A study of longitudinal and transverse shifts at step potentials
- On the Ehrenfest theorem and centroids of relativistic particles
- Effects of superradiance on relativistic Foldy-Wouthuysen densities
- Operators of quantum theory of Dirac's free field