14 Particle Production and Collective Phenomena in Heavy-Ion …
201
Acknowledgements The discussions with Natasha Sharma and help in preparing the manuscript
is appreciated. LK acknowledges the support of the SERB Grant No. ECR/2016/000109 and would
like to thank the STAR and ALICE collaborations.
References
1. J. Adam et al., Experimental and theoretical challenges in the search for the quark gluon
plasma: the STAR Collaboration’s critical assessment of the evidence from RHIC collisions.
Nucl. Phys. A 757, 102–183 (2005)
2. I. Arsene et al., Quark gluon plasma and color glass condensate at RHIC? The Perspective
from the BRAHMS experiment. Nucl. Phys. A 757, 1–27 (2005)
3. K. Adcox et al., QFormation of dense partonic matter in relativistic nucleus-nucleus collisions
at RHIC: experimental evaluation by the PHENIX collaboration. Nucl. Phys. A 757, 184–283
(2005)
4. B.B. Back et al., The PHOBOS perspective on discoveries at RHIC. Nucl. Phys. A 757, 28–101
(2005)
5. C.W. Fabjan et al., ALICE: physics performance report, volume II. J. Phys. G 32, 1295–2040
(2006)
6. M. Shifman, B. Ioffe, At the frontier of particle physics, in Handbook of QCD, Vol. 1–3 (World
Scientific Singapore, Singapore, 2001)
7. M. Cheng et al., The QCD equation of state with almost physical quark masses. Phys. Rev. D
77, 014511 (2008)
8. Y. Aoki, G. Endrodi, Z. Fodor, S.D. Katz, K.K. Szabo, The Order of the quantum chromodynamics transition predicted by the standard model of particle physics. Nature 443, 675–678
(2006)
9. R.V. Gavai, S. Gupta et al., QCD at finite chemical potential with six time slices. Phys. Rev. D
78, 114503 (2008)
10. Z. Fodor, S.D. Katz, Critical point of QCD at finite T and mu, lattice results for physical quark
masses. JHEP 04, 050 (2004)
11. B.I. Abelev et al., Identified particle production, azimuthal anisotropy, and interferometry
measurements in Au+Au collisions at
√ s N N = 9.2- GeV. Phys. Rev. C 81, 024911 (2010)
12. L. Kumar, Review of recent results from the RHIC beam energy scan. Mod. Phys. Lett. A 28,
1330033 (2013)
13. B.B. Abelev et al., Multiplicity dependence of pion, kaon, proton and lambda production in
p-Pb collisions at
√ s N N = 5.02 TeV. Phys. Lett. B 728, 25–38 (2014)
14. J. Adam et al., Multiplicity dependence of charged pion, kaon, and (anti)proton production at
large transverse momentum in p-Pb collisions at
√ s NN = 5.02 TeV. Phys. Lett. B 760, 720–735
(2016)
15. S. Acharya et al., Multiplicity dependence of light-flavor hadron production in pp collisions at
√
s = 7 TeV. Phys. Rev. C 99, 024906 (2009)
16. L. Adamczyk et al., Bulk properties of the medium produced in relativistic heavy-ion collisions
from the beam energy scan program. Phys. Rev. C 96, 044904 (2017)
17. J.L. Klay et al., Longitudinal flow from 2-A-GeV to 8-A-GeV Au+Au collisions at the
Brookhaven AGS. Phys. Rev. Lett. 88, 102301 (2002)
18. C. Alt et al., Pion and kaon production in central Pb + Pb collisions at 20-A and 30-A-GeV:
evidence for the onset of deconfinement. Phys. Rev. C. 77, 024903 (2007)
19. B.I. Abelev et al., Systematic measurements of Identified particle spectra in pp, d + Au and
Au+Au collisions from STAR. Phys. Rev. C 79, 034909 (2009)
20. B. Abelev et al., Centrality dependence of π , K, p production in Pb-Pb collisions at
√
s N N =
2.76 TeV. Phys. Rev. C 88, 044910 (2013)
201
Acknowledgements The discussions with Natasha Sharma and help in preparing the manuscript
is appreciated. LK acknowledges the support of the SERB Grant No. ECR/2016/000109 and would
like to thank the STAR and ALICE collaborations.
References
1. J. Adam et al., Experimental and theoretical challenges in the search for the quark gluon
plasma: the STAR Collaboration’s critical assessment of the evidence from RHIC collisions.
Nucl. Phys. A 757, 102–183 (2005)
2. I. Arsene et al., Quark gluon plasma and color glass condensate at RHIC? The Perspective
from the BRAHMS experiment. Nucl. Phys. A 757, 1–27 (2005)
3. K. Adcox et al., QFormation of dense partonic matter in relativistic nucleus-nucleus collisions
at RHIC: experimental evaluation by the PHENIX collaboration. Nucl. Phys. A 757, 184–283
(2005)
4. B.B. Back et al., The PHOBOS perspective on discoveries at RHIC. Nucl. Phys. A 757, 28–101
(2005)
5. C.W. Fabjan et al., ALICE: physics performance report, volume II. J. Phys. G 32, 1295–2040
(2006)
6. M. Shifman, B. Ioffe, At the frontier of particle physics, in Handbook of QCD, Vol. 1–3 (World
Scientific Singapore, Singapore, 2001)
7. M. Cheng et al., The QCD equation of state with almost physical quark masses. Phys. Rev. D
77, 014511 (2008)
8. Y. Aoki, G. Endrodi, Z. Fodor, S.D. Katz, K.K. Szabo, The Order of the quantum chromodynamics transition predicted by the standard model of particle physics. Nature 443, 675–678
(2006)
9. R.V. Gavai, S. Gupta et al., QCD at finite chemical potential with six time slices. Phys. Rev. D
78, 114503 (2008)
10. Z. Fodor, S.D. Katz, Critical point of QCD at finite T and mu, lattice results for physical quark
masses. JHEP 04, 050 (2004)
11. B.I. Abelev et al., Identified particle production, azimuthal anisotropy, and interferometry
measurements in Au+Au collisions at
√ s N N = 9.2- GeV. Phys. Rev. C 81, 024911 (2010)
12. L. Kumar, Review of recent results from the RHIC beam energy scan. Mod. Phys. Lett. A 28,
1330033 (2013)
13. B.B. Abelev et al., Multiplicity dependence of pion, kaon, proton and lambda production in
p-Pb collisions at
√ s N N = 5.02 TeV. Phys. Lett. B 728, 25–38 (2014)
14. J. Adam et al., Multiplicity dependence of charged pion, kaon, and (anti)proton production at
large transverse momentum in p-Pb collisions at
√ s NN = 5.02 TeV. Phys. Lett. B 760, 720–735
(2016)
15. S. Acharya et al., Multiplicity dependence of light-flavor hadron production in pp collisions at
√
s = 7 TeV. Phys. Rev. C 99, 024906 (2009)
16. L. Adamczyk et al., Bulk properties of the medium produced in relativistic heavy-ion collisions
from the beam energy scan program. Phys. Rev. C 96, 044904 (2017)
17. J.L. Klay et al., Longitudinal flow from 2-A-GeV to 8-A-GeV Au+Au collisions at the
Brookhaven AGS. Phys. Rev. Lett. 88, 102301 (2002)
18. C. Alt et al., Pion and kaon production in central Pb + Pb collisions at 20-A and 30-A-GeV:
evidence for the onset of deconfinement. Phys. Rev. C. 77, 024903 (2007)
19. B.I. Abelev et al., Systematic measurements of Identified particle spectra in pp, d + Au and
Au+Au collisions from STAR. Phys. Rev. C 79, 034909 (2009)
20. B. Abelev et al., Centrality dependence of π , K, p production in Pb-Pb collisions at
√
s N N =
2.76 TeV. Phys. Rev. C 88, 044910 (2013)
