4D lattice-based Equation of State: Generalization of $T^\prime$-Expansion scheme

ORAL

Abstract

First-principle lattice QCD calculations of thermodynamics are constrained to zero net density due to the fermion sign problem. To address this, various methods have been developed to extend the equation of state (EoS) to finite baryonic chemical potential $mu_B$, with Taylor expansion being the standard approach for $B$, $Q$, and $S$ chemical potentials. While the Taylor expansion around $mu_i = 0$ ($i = B, Q, S$) provides reliable results up to $mu_i/T < 2.5$, its range is limited.

We present a novel extension of a recently introduced expansion scheme, which successfully extends the $mu_B$ coverage up to $mu_B/T approx 3.5$. This generalization allows independent variations of the three chemical potentials, leveraging continuum-estimated fluctuations up to fourth order. Our approach significantly expands the accessible region of the four-dimensional QCD phase diagram compared to traditional Taylor expansion methods, offering enhanced predictive power for QCD thermodynamics at finite density.

*This material is based upon work supported by the National Science Foundation under grants No. PHY-2208724 and PHY-2116686, and within the framework of the MUSES collaboration, under Grant No. OAC-2103680. This material is also based upon work supported by the U.S. Department of Energy, Office of Science, Office of Nuclear Physics, under Awards Number DE-SC0022023 and Number DE-SC0025025, as well as by the National Aeronautics and Space Agency (NASA) under Award Number 80NSSC24K0767.

Publication: Abuali, A., Jahan, J., Borsányi, S., Kahangirwe, M., Parotto, P., Pásztor, A., Ratti, C., Shah, H., & Trabulsi, S. A. (2025). "4D-TExS: A new 4D lattice-QCD equation of state with extended density coverage." Phys. Rev. D (Accepted). https://arxiv.org/abs/2504.01881

Presenters

  • Micheal KAHANGIRWE

    • University of Houston

Authors

  • Micheal KAHANGIRWE

    • University of Houston
  • Ahmed Abuali

    • University of Houston
  • Szabolcs Borsanyi

    • Wuppertal University
  • Zoltan Fodor

    • Pennsylvania State University
  • Johannes Jahan

    • University of Houston
  • Paolo Parotto

    • Università di Torino
  • Attila Pásztor

    • ELTE Eötvös Loránd University
  • Claudia Ratti

    • University of Houston
  • Hitansh Mayank Shah

    • University of Houston
  • Seth Trabulsi

    • Rice University