Baryonic Popcorn
Vadim Kaplunovsky, Dmitry Melnikov, Jacob Sonnenschein

TL;DR
This paper investigates the phase transitions of baryonic matter in holographic models, revealing a series of popcorn transitions where instanton lattices expand into higher dimensions, indicating the emergence of a quarkyonic phase.
Contribution
It introduces a detailed analysis of instanton configurations and phase transitions in holographic baryonic matter, including solutions to ADHM equations for various lattice structures.
Findings
Instanton lattices undergo popcorn transitions with increasing density.
Transition from 3D to 4D multi-layer lattices at high densities.
Finite-size instantons suggest the emergence of a quarkyonic phase.
Abstract
In the large N limit cold dense nuclear matter must be in a lattice phase. This applies also to holographic models of hadron physics. In a class of such models, like the generalized Sakai-Sugimoto model, baryons take the form of instantons of the effective flavor gauge theory that resides on probe flavor branes. In this paper we study the phase structure of baryonic crystals by analyzing discrete periodic configurations of such instantons. We find that instanton configurations exhibit a series of "popcorn" transitions upon increasing the density. Through these transitions normal (3D) lattices expand into the transverse dimension, eventually becoming a higher dimensional (4D) multi-layer lattice at large densities. We consider 3D lattices of zero size instantons as well as 1D periodic chains of finite size instantons, which serve as toy models of the full holographic systems. In…
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