On the Bohr radius relationship to spin-orbit interaction, spin magnitude, and Thomas precession
David C. Lush

TL;DR
This paper explores the classical dynamics of spin-orbit interaction in atomic hydrogen, revealing a connection between the Bohr radius and the precession of angular momenta, incorporating Thomas precession effects.
Contribution
It provides a classical electrodynamics perspective on spin-orbit coupling, incorporating Thomas precession and intrinsic spin without quantum assumptions, linking the Bohr radius to angular momentum precession.
Findings
Total angular momentum precesses around a fixed axis.
Stationary total angular momentum occurs at the Bohr radius.
The model links classical precession with quantum ground-state radius.
Abstract
The dynamics of the spin-orbit interaction in atomic hydrogen are studied in a classical electrodynamics-like setting. A Rutherfordian atomic model is used assuming a circular electron orbit, without the quantum principle as imposed arbitrarily in the Bohr model, but with an ad hoc incorporation in the electron of intrinsic spin and associated magnetic dipole moment. Analyzing the motions of the electron spin and orbital angular momenta, it is found that in the presence of Thomas precession, the total angular momentum averaged over the orbit is not generally a constant of the motion. It is noted this differs from the finding of Thomas in a similar assessment of 1927, and the reason for this difference is provided. It is found that although the total orbit-averaged angular momentum is not a constant of the motion, it precesses around a fixed axis similarly to the precession of the total…
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Taxonomy
TopicsAlgebraic and Geometric Analysis · Mathematics and Applications · Relativity and Gravitational Theory
