Lowest-order relativistic interaction between lattice vibrations and internal degrees of freedom of a nucleus

Author
Abstract

A moving nucleus experiences a Lorentz contraction and spin rearrangement due to relativity. A nucleus that oscillates in a molecule or solid due to vibrations will undergo minor relativistic modifications which are a result of the vibrations, indicative of a relativistic phonon-nuclear interaction. The derivation of the lowest-order interaction from the many-particle Dirac model is reviewed. The Dirac model with a realistic potential model is not covariant, which is a source of concern. The lowest-order phonon-nuclear interaction obtained from a covariant two-body Betheā€“Salpeter model is found to be similar to the interaction obtained from the Dirac model, supporting the notion that the interaction is not an artifact. Matrix elements of the lowest-order interaction are expressed in terms of one-body operators, which facilitates evaluation and allows for quantitative estimates of the magnitude.

Year of Publication
2023
Journal
Journal of Physics B: Atomic, Molecular and Optical Physics
Volume
56
Issue
19
Number of Pages
195002+
Date Published
2023
URL
DOI
10.1088/1361-6455/acf3be
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