TY - JOUR
T1 - Study of thermal properties of the medium produced in Au+Au collisions at √s NN = 7. 7 GeV using a thermal model
AU - Bairathi, V.
AU - Blaschke, D.
AU - Bravina, L.
AU - Brooks, W. K.
AU - Chhabra, T.
AU - Kabana, S.
AU - Kuleshov, S.
AU - Potashnikova, I.
AU - Sagun, V.
AU - Vitiuk, O.
AU - Zabrodin, E.
AU - Zherebtsova, E.
N1 - Publisher Copyright:
© 2024 World Scientific Publishing Company.
PY - 2024/10/10
Y1 - 2024/10/10
N2 - In this study, we examine the thermal properties of the medium formed in ultra-relativistic heavy-ion collisions at chemical freeze-out using a thermal model. We utilize experimental data on various hadron species from 0% to 5% most central Au+Au collisions at sNN=7.7GeV from the STAR BES program to analyze the thermal properties, namely, chemical freeze-out temperature, baryon chemical potential, and strangeness chemical potential. We employ a χ2 minimization technique to obtain these thermal properties. Furthermore, we also obtain thermal properties with strangeness conservation condition and at zero potentials μB∕T=μS∕T=0. We compare particle ratios from the thermal model with the experimental data. The thermal model describes particle ratios within ±2.5 standard deviations and χ2∕NDF between 1-2. We also discuss the collision energy dependence of thermodynamic properties of the medium at freeze-out and compare results with the published STAR results and other thermal model calculations.
AB - In this study, we examine the thermal properties of the medium formed in ultra-relativistic heavy-ion collisions at chemical freeze-out using a thermal model. We utilize experimental data on various hadron species from 0% to 5% most central Au+Au collisions at sNN=7.7GeV from the STAR BES program to analyze the thermal properties, namely, chemical freeze-out temperature, baryon chemical potential, and strangeness chemical potential. We employ a χ2 minimization technique to obtain these thermal properties. Furthermore, we also obtain thermal properties with strangeness conservation condition and at zero potentials μB∕T=μS∕T=0. We compare particle ratios from the thermal model with the experimental data. The thermal model describes particle ratios within ±2.5 standard deviations and χ2∕NDF between 1-2. We also discuss the collision energy dependence of thermodynamic properties of the medium at freeze-out and compare results with the published STAR results and other thermal model calculations.
KW - heavy-ion collisions
KW - quark-gluon plasma
KW - Thermal properties
UR - https://www.scopus.com/pages/publications/85208367192
U2 - 10.1142/S0217751X24430097
DO - 10.1142/S0217751X24430097
M3 - Article
AN - SCOPUS:85208367192
SN - 0217-751X
VL - 39
JO - International Journal of Modern Physics A
JF - International Journal of Modern Physics A
IS - 28
M1 - 2443009
ER -