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arXiv:2607.16774·v2·High Energy Physics — Theory

Quantum phases at high chemical potential in 2-flavor matrix-QCD

Nirmalendu Acharyya🇮🇳 · Prasanjit Aich🇮🇳 · Arkajyoti Bandyopadhyay🇮🇳 · Sachindeo Vaidya🇮🇳

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Abstract

We investigate the matrix model of two-color two-flavor QCD (matrix-QCD) in regimes with large baryon (), isospin (), and/or chiral () chemical potentials. In these regimes, the Hamiltonian simplifies considerably, making it possible to investigate the ground state for intermediate and strong Yang-Mills coupling. By diagonalizing the Hamiltonian using the variational techniques, we show that in regimes where and (or and ) dominate, tuning the remaining parameters leads to quantum phase transitions (QPTs). These transitions form a complex web of phases, each of which has a ground state uniquely labelled by baryon number and isospin . Several of these phases are LOFF-like, characterized by a ground state carrying non-zero spin and hence spontaneously breaking rotational symmetry. These results are consistent with older effective field theory predictions by Splittorff-Son-Stephanov \cite{Splittorff:2000mm}. The fermionic content of these LOFF-like ground states consists of spin-1 di-(anti-) quarks which are analogous to Cooper pairs. We compute the spin-fraction carried by the quarks and find that it constitutes a significant portion -- in some cases nearly the entirety -- of the total spin.

Comments: LaTeX2e, 23 pages, 15 figures, minor corrections

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