The Magnetic Structure of Light Nuclei from Lattice QCD
Emmanuel Chang, William Detmold, Kostas Orginos, Assumpta Parreno,, Martin J. Savage, Brian C. Tiburzi, and Silas R. Beane

TL;DR
This study uses lattice QCD with background magnetic fields at a heavy pion mass to compute magnetic moments and polarizabilities of light nuclei, revealing significant isovector components and providing insights into nuclear magnetic properties.
Contribution
It presents the first lattice QCD calculations of magnetic moments and polarizabilities of light nuclei at a heavy pion mass, including the extraction of the short-distance two-nucleon counterterm.
Findings
Nucleon polarizabilities are similar to physical values.
Dineutron is bound and has a distinct polarizability.
Magnetic polarizabilities of light nuclei are positive and comparable to the proton.
Abstract
Lattice QCD with background magnetic fields is used to calculate the magnetic moments and magnetic polarizabilities of the nucleons and of light nuclei with , along with the cross-section for the transition , at the flavor SU(3)-symmetric point where the pion mass is MeV. These magnetic properties are extracted from nucleon and nuclear energies in six uniform magnetic fields of varying strengths. The magnetic moments are presented in a recent Letter. For the charged states, the extraction of the polarizability requires careful treatment of Landau levels, which enter non-trivially in the method that is employed. The nucleon polarizabilities are found to be of similar magnitude to their physical values, with fm and fm, exhibiting…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum Chromodynamics and Particle Interactions · Atomic and Subatomic Physics Research
