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[[File:PHENIX_experiment_outside.jpg | thumb | right | alt=PHENIX experimental hall outside view | PHENIX experimental hall outside view]]The '''PHENIX detector''' (for Pioneering High Energy Nuclear Interaction eXperiment) is the largest of the four experiments that have taken data at the [[Relativistic Heavy Ion Collider]] (RHIC) in [[Brookhaven National Laboratory]], United States.
==Overview==
PHENIX is an exploratory experiment for the investigation of high energy collisions of heavy ions and protons, and is designed specifically to measure direct probes of the collisions such as
The PHENIX Experiment consists of a collection of detectors, each of which perform a specific role in the measurement of the results of a heavy ion collision. The detectors are grouped into two central arms, which are capable of measuring a variety of particles including
The experiment consists of a collaboration of more than 400 scientists and engineers from
==The physics of PHENIX==
The PHENIX collaboration performs basic research with high energy collisions of heavy ions and protons. The primary mission of PHENIX is the following:
*Search for a new state of matter called the [[quark–gluon plasma]], which is believed to be the state of matter existing in the universe shortly after the [[Big Bang]]. PHENIX data suggest that a new form of matter has indeed been discovered, and that it behaves like a perfect fluid. PHENIX scientists are now working to study its properties.<ref name=phenix16>{{cite journal |doi=10.1088/1742-6596/668/1/012017 |title=Strangeness production in PHENIX experiment |last=Kotov |first=D. O. |display-authors=et al. |journal=Journal of Physics: Conference Series |date=2016 |volume=668 |number=12017|page=012017 |doi-access=free |bibcode=2016JPhCS.668a2017K }}</ref>
*Study matter under extreme conditions of temperature and pressure.
*Learn where the proton gets its spin.
*Study the most basic building blocks of nature and the forces that govern them.
*Create a map of the [[quantum chromodynamics]] phase diagram.<ref name=phenixQCD>{{cite journal |doi=10.1088/1742-6596/1602/1/012009 |title=Exploring the QCD phase diagram via the collision energy dependence of multi-particle femtoscopy with PHENIX |last=Csanád |first=M. |display-authors=et al. |journal=Journal of Physics: Conference Series |date=2020 |volume=1602 |number=12009|page=012009 |doi-access=free |arxiv=2007.04751 |bibcode=2020JPhCS1602a2009C }}</ref>
==See also==
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==Further reading==
{{cite journal
|author=K. Adcox
|year=2005
|title=Formation of dense partonic matter in relativistic nucleus–nucleus collisions at RHIC: Experimental evaluation by the PHENIX Collaboration
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|volume=757 |issue=1–2 |pages=184–283
|arxiv=nucl-ex/0410003
|bibcode=2005NuPhA.757..
|doi=10.1016/j.nuclphysa.2005.03.086
|s2cid=119511423
}}
==References==
{{reflist}}
==External links==
*[http://www.phenix.bnl.gov/ PHENIX webpage]
*[https://inspirehep.net/experiments/1108852 PHENIX experiment] record on [[INSPIRE-HEP]]
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