Baryonic vortices in rotating nuclear matter

Fuente: arXiv
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Autori principali: Mameda, Kazuya, Nitta, Muneto, Qiu, Zebin
Natura: Preprint
Pubblicazione: 2026
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author Mameda, Kazuya
Nitta, Muneto
Qiu, Zebin
author_facet Mameda, Kazuya
Nitta, Muneto
Qiu, Zebin
contents We investigate baryonic vortices as topological excitations in rotating nuclear matter within the framework of chiral perturbation theory. We identify two distinct configurations: local and global vortices, both carrying the baryon number as the topological charge associated with the third homotopy group $π_3(S^3)$. For the local vortex, similar to the vortex Skyrmion in a finite isospin chemical potential, charged pions form the condensate on the boundary and have a phase winding, while the neutral pion varies along the rotation axis inside the vortex core. On the other hand, a global vortex is formed by the condensate and phase winding of the neutral pion, while the charged pions vary on the inside along the rotation axis. Crucially, although global vortices are usually discarded in infinite systems due to logarithmic divergence in energy, we demonstrate that the finite-size constraint dictated by causality in a rotating frame regularizes the divergence physically, rendering the global vortex a viable excitation. We reveal an energetic competition between global and local vortex states, under the tunable parameters of rotation, system size, and baryon chemical potential. Our results suggest that the previously overlooked global vortex can play a significant role in the topological structure of rotating dense QCD matter.
format Preprint
id arxiv_https___arxiv_org_abs_2603_29325
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Baryonic vortices in rotating nuclear matter
Mameda, Kazuya
Nitta, Muneto
Qiu, Zebin
High Energy Physics - Phenomenology
Nuclear Theory
We investigate baryonic vortices as topological excitations in rotating nuclear matter within the framework of chiral perturbation theory. We identify two distinct configurations: local and global vortices, both carrying the baryon number as the topological charge associated with the third homotopy group $π_3(S^3)$. For the local vortex, similar to the vortex Skyrmion in a finite isospin chemical potential, charged pions form the condensate on the boundary and have a phase winding, while the neutral pion varies along the rotation axis inside the vortex core. On the other hand, a global vortex is formed by the condensate and phase winding of the neutral pion, while the charged pions vary on the inside along the rotation axis. Crucially, although global vortices are usually discarded in infinite systems due to logarithmic divergence in energy, we demonstrate that the finite-size constraint dictated by causality in a rotating frame regularizes the divergence physically, rendering the global vortex a viable excitation. We reveal an energetic competition between global and local vortex states, under the tunable parameters of rotation, system size, and baryon chemical potential. Our results suggest that the previously overlooked global vortex can play a significant role in the topological structure of rotating dense QCD matter.
title Baryonic vortices in rotating nuclear matter
topic High Energy Physics - Phenomenology
Nuclear Theory
url https://arxiv.org/abs/2603.29325