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Collider Detector at Fermilab

The Collider Detector at Fermilab (CDF) experimental collaboration studies high energy particle collisions from the Tevatron, the world's former highest-energy particle accelerator. The goal is to discover the identity and properties of the particles that make up the universe and to understand the forces and interactions between those particles.

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History

Discovery of the top quark

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Collider Detector at Fermilab

Nodes65
Edges64
Triples15
Avg. degree1.97
Density0.030769
Components1

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Collider Detector at Fermilab

Top relations

related to External links · 4
Collider Detector at Fermilab → CDF, Fermilab, INSPIRE-HEP, Record

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Important terminology

detector cdf particles silicon energy top quark particle cot tevatron high collisions layers beam muon detectors mass charged bottom quarks

Entity relationships Subject–Predicate–Object triples

SubjectPredicateObjectConfidenceSrc
the topinstance ofLook for evidence for phenomena beyond the Standard Model of particle physicsMeasure and study the production and decay of heavy particles0.80text
bottom quarksinstance ofLook for evidence for phenomena beyond the Standard Model of particle physicsMeasure and study the production and decay of heavy particles0.80text
and the Winstance ofLook for evidence for phenomena beyond the Standard Model of particle physicsMeasure and study the production and decay of heavy particles0.80text
Z bosonsMeasureinstance ofLook for evidence for phenomena beyond the Standard Model of particle physicsMeasure and study the production and decay of heavy particles0.80text
study the production of high-energy particle jetsinstance ofLook for evidence for phenomena beyond the Standard Model of particle physicsMeasure and study the production and decay of heavy particles0.80text
photonsStudy other phenomena such as diffractionThe Tevatron collided protonsinstance ofLook for evidence for phenomena beyond the Standard Model of particle physicsMeasure and study the production and decay of heavy particles0.80text
antiprotons at a center-of-mass energy of about 2 TeVinstance ofLook for evidence for phenomena beyond the Standard Model of particle physicsMeasure and study the production and decay of heavy particles0.80text
the top quarkinstance ofThe very high energy available for these collisions made it possible to produce heavy particles0.80text
the Winstance ofThe very high energy available for these collisions made it possible to produce heavy particles0.80text
Z bosonsinstance ofThe very high energy available for these collisions made it possible to produce heavy particles0.80text
which weigh much more than a protoninstance ofThe very high energy available for these collisions made it possible to produce heavy particles0.80text
Collider Detector at Fermilabrelated to External linksFermilab0.60section

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