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J. Pluta

Researcher at Warsaw University of Technology

Publications -  706
Citations -  58347

J. Pluta is an academic researcher from Warsaw University of Technology. The author has contributed to research in topics: Pseudorapidity & Hadron. The author has an hindex of 120, co-authored 659 publications receiving 52025 citations. Previous affiliations of J. Pluta include University of Rajasthan.

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Performance of the ALICE experiment at the CERN LHC

Betty Abelev, +943 more
TL;DR: The ALICE experiment at the CERN Large Hadron Collider as mentioned in this paper continuously took data during the first physics campaign of the machine from fall 2009 until early 2013, using proton and lead-ion beams.
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Elliptic Flow of Charged Particles in Pb-Pb Collisions at root s(NN)=2.76 TeV

K. Aamodt, +1014 more
TL;DR: In this paper, the first measurement of charged particle elliptic flow in Pb-Pb collisions at root s(NN) p = 2.76 TeV with the ALICE detector at the CERN Large Hadron Collider was performed in the central pseudorapidity region.
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Global Λ hyperon polarization in nuclear collisions

L. Adamczyk, +341 more
- 23 Jan 2017 - 
TL;DR: In this article, an alignment between the global angular momentum of a non-central collision and the spin of emitted particles is presented, revealing that the fluid produced in heavy ion collisions is the most vortical system so far observed.
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Disappearance of back-to-back high-pT Hadron correlations in central Au + Au collisions at √SNN = 200 GeV

C. Adler, +303 more
TL;DR: The back-to-back correlations are reduced considerably in the most central Au+Au collisions, indicating substantial interaction as the hard-scattered partons or their fragmentation products traverse the medium.
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Transverse momentum and collision energy dependence of high p(T) hadron suppression in Au+Au collisions at ultrarelativistic energies

Joseph Adams, +367 more
TL;DR: High statistics measurements of inclusive charged hadron production in Au+Au and p+p collisions at sqrt[s(NN)]=200 GeV report no evidence of p(T)-dependent suppression, which may be expected from models incorporating jet attenuation in cold nuclear matter or scattering of fragmentation hadrons.