Vortices and Other Topological Solitons in Dense Quark Matter
Minoru Eto, Yuji Hirono, Muneto Nitta, Shigehiro Yasui

TL;DR
This review explores topological solitons in dense quark matter, focusing on non-Abelian vortices in the CFL phase, their interactions, zero modes, and phenomenological implications in astrophysical and quantum contexts.
Contribution
It provides a comprehensive analysis of non-Abelian vortices in dense QCD, including their properties, zero modes, and interactions, with novel insights into vortex lattices and dualities.
Findings
Vortex lattices form due to repulsive intervortex interactions.
Zero-energy modes include Kelvin modes and Majorana fermions.
Vortices exhibit non-Abelian anyon behavior.
Abstract
In this review, we discuss various properties of topological solitons in dense QCD matter, with a particular emphasis on the CFL phase exhibiting superfluidity and superconductivity, and their phenomenological implications in terms of the effective field theories such as the Ginzburg-Landau theory, the chiral Lagrangian, or the Bogoliubov--de Gennes equation. The most fundamental topological excitations are non-Abelian vortices, which are 1/3 quantized superfluid vortices and color magnetic flux tubes. They are created at a phase transition or a rotation such compact stars. The intervortex-interaction is repulsive and consequently a vortex lattice is formed. Bosonic and fermionic zero-energy modes are trapped in the vortex core and propagate along it as gapless excitations. The former consists of translational zero modes (a Kelvin mode) with a quadratic dispersion and CP(2)…
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