arXiv · hep-ph/9606264
Baryon Magnetic Moments and Proton Spin: A Model with Collective Quark Rotation
Abstract
We analyse the baryon magnetic moments in a model that relates them to the parton spins $Δu$, $Δd$, $Δs$, and includes a contribution from orbital angular momentum. The specific assumption is the existence of a 3-quark correlation (such as a flux string) that rotates with angular momentum $\langle L_z \rangle$ around the proton spin axis. A fit to the baryon magnetic moments, constrained by the measured values of the axial vector coupling constants $a^{(3)}=F+D$, $a^{(8)}=3F-D$, yields $\langle S_z \rangle = 0.08 \pm 0.13$, $\langle L_z \rangle = 0.39 \pm 0.09$, where the error is a theoretical estimate. A second fit, under slightly different assumptions, gives $\langle L_z \rangle = 0.37 \pm 0.09$, with no constraint on $\langle S_z \rangle$. The model provides a consistent description of axial vector couplings, magnetic moments and the quark polarization $\langle S_z \rangle$ measured in deep inelastic scattering. The fits suggest that a significant part of the angular momentum of the proton may reside in a collective rotation of the constituent quarks.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
M. Casu, L. M. Sehgal. 1996-08-07. Baryon Magnetic Moments and Proton Spin: A Model with Collective Quark Rotation. https://doi.org/10.1103/physrevd.55.2644%2010.1103%2Fphysrevd.56.3159
Cite the original work for its findings. Save a collection to share your selection of sources.