arXiv · 1807.05607
The QCD crossover at zero and non-zero baryon densities from Lattice QCD
Abstract
We map out the QCD crossover line $\frac{T_c(μ_B)}{T_c(0)} = 1 - κ_2 \left( \frac{μ_B}{T_c(0)} \right)^2 - κ_4 \left( \frac{μ_B}{T_c(0)} \right)^4 + \mathcal{O}(μ_B^6)$ for the first time up to $\mathcal{O}(μ_B^4)$ for a strangeness neutral system by performing a Taylor expansion of chiral observables in temperature $T$ and chemical potentials $μ$. At vanishing chemical potential, we report a crossover temperature $T_c(0) = (156.5 \pm 1.5)\;\mathrm{MeV}$ defined by the average of several second-order chiral susceptibilities. For a system with thermal conditions appropriate for a heavy-ion collision, we determined a curvature from the subtracted condensate as $κ_2 = 0.0120(20)$ and from the disconnected susceptibility as $κ_2 = 0.0123(30)$. The next order $κ_4$ is significantly smaller. We also report the crossover temperature as a function of the chemical potentials for: baryon-number, electric charge, strangeness and isospin. Additionally, we find that $T_c(μ_B)$ is in agreement with lines of constant energy density and constant entropy density. Along this crossover line, we study net baryon-number fluctuations and show that their increase is substantially smaller compared to that obtained in HRG model calculations. Similarly, we analyze chiral susceptibility fluctuations along the crossover line and show that these are constant. We conclude that no signs for a narrowing of the crossover region can be found for baryon chemical potential $μ_B < 250\;\mathrm{MeV}$.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Patrick Steinbrecher. 2018-07-15. The QCD crossover at zero and non-zero baryon densities from Lattice QCD. https://doi.org/10.1016/j.nuclphysa.2018.08.025
Cite the original work for its findings. Save a collection to share your selection of sources.