Enhanced Schiff and magnetic quadrupole moments in deformed nuclei and their connection to the search for axion dark matter
F. Dalton, V. V. Flambaum, A. J. Mansour

TL;DR
This paper investigates how deformed nuclei exhibit enhanced T and P violating moments, such as Schiff and magnetic quadrupole moments, which could improve the search for axion dark matter through experimental detection.
Contribution
It provides updated estimates of enhanced Schiff moments in various isotopes and explores their implications for axion dark matter detection in solid state experiments.
Findings
Enhanced nuclear moments in deformed nuclei due to T, P violation.
Updated quantitative estimates for isotopes like Eu, Sm, Gd, Dy, Er, Fr, Rn, Ac, Ra, Th, Pa, U, Np, Pu.
Potential candidate compounds with amplified effects for axion dark matter searches.
Abstract
Deformed nuclei possess enhanced moments violating time reversal invariance () and parity (). Collective magnetic quadrupole moments (MQM) appear in nuclei with a quadrupole deformation (which have ordinary ,-conserving collective electric quadrupole moments). Nuclei with an octupole deformation have a collective electric octupole moment, electric dipole moment (EDM), Schiff moment and MQM in the intrinsic frame which rotates with the nucleus. In a state with definite angular momentum in the laboratory frame, these moments are forbidden by and conservation, meaning their expectation values vanish due to nuclear rotation. However, nuclei with an octupole deformation have doublets of close opposite parity rotational states with the same spin, which are mixed by ,-violating nuclear forces. This mixing polarises the orientation of the nuclear axis along the nuclear…
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Taxonomy
TopicsAtomic and Subatomic Physics Research · Dark Matter and Cosmic Phenomena · Advanced NMR Techniques and Applications
