Electromagnetic Selection Rules for $^{24}\mathrm{Mg}$ in a $6\alpha$ Cluster Model with $\mathcal{D}_{4h}$ Symmetry
Gianluca Stellin, Karl-Heinz Speidel

TL;DR
This paper uses a $ ext{D}_{4h}$ symmetric $6 ext{α}$ cluster model to analyze electromagnetic selection rules and transition properties of $^{24} ext{Mg}$, revealing how symmetry constrains observable nuclear transitions.
Contribution
It applies group-theoretical methods to derive electromagnetic selection rules for $^{24} ext{Mg}$ within a $6 ext{α}$ cluster model with $ ext{D}_{4h}$ symmetry, providing new insights into transition mechanisms.
Findings
Interband E0, E2, M1, M2, M3 transitions are symmetry-regulated.
M1 transitions occur between states with single vibrational quanta.
E1 transitions are forbidden by the model and attributed to nucleon degrees of freedom.
Abstract
In the framework of a macroscopic -cluster model, the structural properties and the spectroscopy of the nucleus are investigated. Special attention is devoted to the electromagnetic selection rules imposed by the point-symmetry group that leaves invariant the adopted equilibrium configuration, a square bipyramid. The analysis entails the application of group-theoretical identities and character tables, in a way familiar to quantum chemists. The results show that the occurrence of interband E0, E2, and M1, M2, M3 transitions is strictly regulated by the transformation properties of the excited vibrational modes to which the states in the process belong. Unlike the nucleus in the -symmetric arrangement, M1 transition channels are active between states corresponding to a single quantum of…
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Taxonomy
TopicsNuclear physics research studies · Quantum Chromodynamics and Particle Interactions · Advanced NMR Techniques and Applications
