English

Understanding the puzzle of angular momentum conservation in beta decay and related processes

High Energy Physics - Phenomenology 2024-09-05 v2 High Energy Physics - Theory Nuclear Theory Quantum Physics

Abstract

We ask the question of how angular momentum is conserved in electroweak interaction processes. To introduce the problem with a minimum of mathematics, we first raise the same issue in elastic scattering of a circularly polarized photon by an atom, where the scattered photon has a different spin direction than the original photon, and note its presence in scattering of a fully relativistic spin-1/2 particle by a central potential. We then consider inverse beta decay in which an electron is emitted following the capture of a neutrino on a nucleus. While both the incident neutrino and final electron spins are antiparallel to their momenta, the final spin is in a different direction than that of the neutrino -- an apparent change of angular momentum. However, prior to measurement of the final particle, in all these cases angular momentum is indeed conserved, The apparent non-conservation of angular momentum arises in the quantum measurement process in which the measuring apparatus does not have an initially well-defined angular momentum, but is localized in the outside world. We generalize the discussion to massive neutrinos and electrons, and examine nuclear beta decay and electron-positron annihilation processes through the same lens, enabling physically transparent derivations of angular and helicity distributions in these reactions.

Keywords

Cite

@article{arxiv.2405.15011,
  title  = {Understanding the puzzle of angular momentum conservation in beta decay and related processes},
  author = {Gordon Baym and Jen-Chieh Peng and C. J. Pethick},
  journal= {arXiv preprint arXiv:2405.15011},
  year   = {2024}
}

Comments

9 pages, 1 figure. Expanded version