202
L. Kumar
21. J. Cleymans et al., The Thermal model and the transition from baryonic to mesonic freeze-out.
Eur. Phys. J. A 29, 119–121 (2006)
22. W. Busza, A.S. Goldhaber, Nuclear stopping power. Phys. Lett. B 139, 235 (2009)
23. S. Wheaton, J. Cleymans, THERMUS: a thermal model package for ROOT. Comput. Phys.
Commun. 180, 84–106 (2009)
24. A. Andronic, F. Beutler, P. Braun-Munzinger, K. Redlich, J. Stachel, Thermal description of
hadron production in e+e- collisions revisited. Phys. Lett. B 675, 312–318 (2009)
25. N. Sharma, J. Cleymans, L. Kumar, Thermal model description of p–Pb collisions at
√ s N N =
5.02 TeV. Eur. Phys. J. C 78, 288 (2019)
26. J. Cleymans, K. Redlich, E. Suhonen, Canonical description of strangeness conservation and
particle production. Z. Phys. C 51, 137–141 (1991)
27. A. Andronic, P. Braun-Munzinger, K. Redlich, J. Stachel, Decoding the phase structure of QCD
via particle production at high energy. Nature 561, 321–330 (2018)
28. A. Bazavov et al., Equation of state in (2+1)-flavor QCD. Phys. Rev. D. 90, 094503 (2014)
29. Sz Borsanyi, G. Endrodi, Z. Fodor, S.D. Katz, S. Krieg, C. Ratti, K.K. Szabo, QCD equation
of state at nonzero chemical potential: continuum results with physical quark masses at order
mu 2 . JHEP 08, 053 (2012)
30. E. Schnedermann, J. Sollfrank, U.W. Heinz, Thermal phenomenology of hadrons from 200A/GeV S+S collisions. Phys. Rev. C. 48, 2462–2475 (1993)
31. B.B. Abelev et al., Elliptic flow of identified hadrons in Pb-Pb collisions at
√ s N N . JHEP 06,
190 (2015)
32. J. Adams et al., Multi-strange baryon elliptic flow in Au + Au collisions at s(NN)**(1/2) =
200-GeV. Phys. Rev. Lett. 95, 122301 (2005)
33. A. Adare et al., Scaling properties of azimuthal anisotropy in Au+Au and Cu+Cu collisions at
s(NN) = 200-GeV. Phys. Rev. Lett. 98, 162301 (2007)
34. L. Adamczyk et al., Observation of an energy-dependent difference in elliptic flow between
particles and antiparticles in relativistic heavy ion collisions. Phys. Rev. Lett. 110, 142301
(2013)
35. J. Adam, Enhanced production of multi-strange hadrons in high-multiplicity proton-proton
collisions. Nature Phys. 13, 535–539 (2017)
36. J. Adam et al., Multi-strange baryon production in p-Pb collisions at
√
s N N =5.02 TeV. Phys.
Lett. B 758, 389–401 (2016)
37. B.B. Abelev et al., Production of charged pions, kaons and protons at large transverse momenta
in pp and Pb-Pb collisions at
√
s NN =2.76 TeV. Phys. Lett. B 736, 196–207 (2013)
38. B.B. Abelev et al., K 0
S and production in Pb-Pb collisions at
√ s N N = 2.76 TeV. Phys. Rev.
Lett. 111, 222301 (2013)
L. Kumar
21. J. Cleymans et al., The Thermal model and the transition from baryonic to mesonic freeze-out.
Eur. Phys. J. A 29, 119–121 (2006)
22. W. Busza, A.S. Goldhaber, Nuclear stopping power. Phys. Lett. B 139, 235 (2009)
23. S. Wheaton, J. Cleymans, THERMUS: a thermal model package for ROOT. Comput. Phys.
Commun. 180, 84–106 (2009)
24. A. Andronic, F. Beutler, P. Braun-Munzinger, K. Redlich, J. Stachel, Thermal description of
hadron production in e+e- collisions revisited. Phys. Lett. B 675, 312–318 (2009)
25. N. Sharma, J. Cleymans, L. Kumar, Thermal model description of p–Pb collisions at
√ s N N =
5.02 TeV. Eur. Phys. J. C 78, 288 (2019)
26. J. Cleymans, K. Redlich, E. Suhonen, Canonical description of strangeness conservation and
particle production. Z. Phys. C 51, 137–141 (1991)
27. A. Andronic, P. Braun-Munzinger, K. Redlich, J. Stachel, Decoding the phase structure of QCD
via particle production at high energy. Nature 561, 321–330 (2018)
28. A. Bazavov et al., Equation of state in (2+1)-flavor QCD. Phys. Rev. D. 90, 094503 (2014)
29. Sz Borsanyi, G. Endrodi, Z. Fodor, S.D. Katz, S. Krieg, C. Ratti, K.K. Szabo, QCD equation
of state at nonzero chemical potential: continuum results with physical quark masses at order
mu 2 . JHEP 08, 053 (2012)
30. E. Schnedermann, J. Sollfrank, U.W. Heinz, Thermal phenomenology of hadrons from 200A/GeV S+S collisions. Phys. Rev. C. 48, 2462–2475 (1993)
31. B.B. Abelev et al., Elliptic flow of identified hadrons in Pb-Pb collisions at
√ s N N . JHEP 06,
190 (2015)
32. J. Adams et al., Multi-strange baryon elliptic flow in Au + Au collisions at s(NN)**(1/2) =
200-GeV. Phys. Rev. Lett. 95, 122301 (2005)
33. A. Adare et al., Scaling properties of azimuthal anisotropy in Au+Au and Cu+Cu collisions at
s(NN) = 200-GeV. Phys. Rev. Lett. 98, 162301 (2007)
34. L. Adamczyk et al., Observation of an energy-dependent difference in elliptic flow between
particles and antiparticles in relativistic heavy ion collisions. Phys. Rev. Lett. 110, 142301
(2013)
35. J. Adam, Enhanced production of multi-strange hadrons in high-multiplicity proton-proton
collisions. Nature Phys. 13, 535–539 (2017)
36. J. Adam et al., Multi-strange baryon production in p-Pb collisions at
√
s N N =5.02 TeV. Phys.
Lett. B 758, 389–401 (2016)
37. B.B. Abelev et al., Production of charged pions, kaons and protons at large transverse momenta
in pp and Pb-Pb collisions at
√
s NN =2.76 TeV. Phys. Lett. B 736, 196–207 (2013)
38. B.B. Abelev et al., K 0
S and production in Pb-Pb collisions at
√ s N N = 2.76 TeV. Phys. Rev.
Lett. 111, 222301 (2013)
