TY - JOUR
T1 - Phase stability in the three-dimensional open-source code for the chiral mean-field model
AU - (MUSES Collaboration)
AU - Cruz-Camacho, Nikolas
AU - Kumar, Rajesh
AU - Pelicer, Mateus Reinke
AU - Peterson, Jeff
AU - Manning, T. Andrew
AU - Haas, Roland
AU - Dexheimer, Veronica
AU - Noronha-Hostler, Jaquelyn
N1 - The authors acknowledge useful discussions with Jorge Noronha and Johannes Jahan on the stability constraints. All authors of this paper are a part of the MUSES Collaboration, which is supported by the NSF under OAC-2103680. Additional support for the collaboration members includes the following: R. H. is supported under OAC-2005572, and OAC-2004879. J. N. H. acknowledges support from the U.S. DOE Nuclear Science Grant No. DE-SC0023861, and within the framework of the Saturated Glue (SURGE) Topical Theory Collaboration. R. K., J. P., and V. D. were funded by the National Science Foundation under Grants No. PHY1748621 and No. NP3M PHY2116686, and by the Department of Energy under Grant No. DE-SC0024700. The work is also supported by the Illinois Campus Cluster, a computing resource that is operated by the Illinois Campus Cluster Program (ICCP) in conjunction with the National Center for Supercomputing Applications (NCSA), which is supported by funds from the University of Illinois Urbana Champaign.
PY - 2025/5/1
Y1 - 2025/5/1
N2 - In this paper we explore independently for the first time three chemical potentials (baryon μB, charged μQ, and strange μS) in the chiral mean field (CMF) model. We designed and implemented cmf++, a new version of the CMF model rewritten in c++ that is optimized, modular, and well documented. cmf++ has been integrated into the MUSES Calculation Engine as a free and open-source software module. The runtime improved in more than 4 orders of magnitude across all 3 chemical potentials, when compared to the legacy code. Here we focus on the zero temperature case and study stable, as well as metastable and unstable, vacuum, hadronic, and quark phases, showing how phase boundaries vary with the different chemical potentials. Due to the significant numerical improvements in cmf++, we can now for the first time sweep the entire μB, μS, μQ phase space, investigate metastable phases, and calculate high-order susceptibilities within the CMF framework. This allows us to find phases of matter that include a light hadronic phase, a strangeness-dominated hadronic phase, and a quark phase. The numerical improvements also allow us to identify the order of the transitions among these phases, finding a first-order chiral symmetry restoration phase transition among the hadronic phases (favored for negative μQ and/or μS for some coupling schemes), in addition to third-order phase transitions. In particular, we identify for the first time triple points in the CMF model, where both chiral symmetry restoration and deconfinement phase transitions meet in the chemical potential phase space. Such points could potentially be identified in low-energy heavy-ion collisions.
AB - In this paper we explore independently for the first time three chemical potentials (baryon μB, charged μQ, and strange μS) in the chiral mean field (CMF) model. We designed and implemented cmf++, a new version of the CMF model rewritten in c++ that is optimized, modular, and well documented. cmf++ has been integrated into the MUSES Calculation Engine as a free and open-source software module. The runtime improved in more than 4 orders of magnitude across all 3 chemical potentials, when compared to the legacy code. Here we focus on the zero temperature case and study stable, as well as metastable and unstable, vacuum, hadronic, and quark phases, showing how phase boundaries vary with the different chemical potentials. Due to the significant numerical improvements in cmf++, we can now for the first time sweep the entire μB, μS, μQ phase space, investigate metastable phases, and calculate high-order susceptibilities within the CMF framework. This allows us to find phases of matter that include a light hadronic phase, a strangeness-dominated hadronic phase, and a quark phase. The numerical improvements also allow us to identify the order of the transitions among these phases, finding a first-order chiral symmetry restoration phase transition among the hadronic phases (favored for negative μQ and/or μS for some coupling schemes), in addition to third-order phase transitions. In particular, we identify for the first time triple points in the CMF model, where both chiral symmetry restoration and deconfinement phase transitions meet in the chemical potential phase space. Such points could potentially be identified in low-energy heavy-ion collisions.
UR - https://www.scopus.com/pages/publications/105005990920
UR - https://www.scopus.com/pages/publications/105005990920#tab=citedBy
U2 - 10.1103/PhysRevD.111.094030
DO - 10.1103/PhysRevD.111.094030
M3 - Article
AN - SCOPUS:105005990920
SN - 2470-0010
VL - 111
JO - Physical Review D
JF - Physical Review D
IS - 9
M1 - 094030
ER -