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The 43 pages that link to Neutrino oscillation, each with the reason it gives.
Standard ModelCompared with: Oscillations establish neutrino mass, absent from the minimal Standard Model.
Weak interactionRelated: Weak interactions produce and detect neutrino flavors, connecting them to oscillation measurements.
NeutrinoRelated: Oscillation shows that neutrinos have mass and that flavor states mix.
Particle physicsBroader topic: Oscillations demonstrate that neutrinos have mass, beyond the original Standard Model.
CP violationRelated: Differences between neutrino and antineutrino oscillations could reveal leptonic CP violation.
Neutrino massRelated: Oscillations provide the direct evidence that neutrino mass states are not all degenerate.
Neutrino astronomyRelated: Flavor changes shape which neutrinos a detector identifies and how source fluxes are interpreted.
Solar neutrino problemNarrower topic: Oscillations transform some solar electron neutrinos into flavors that early detectors could not see.
LeptonBroader topic: Oscillations show that neutrino flavor is not a fixed identity during propagation.
Super-KamiokandeRelated: Comparing detected flavors with expected fluxes lets the observatory measure oscillations.
IceCube Neutrino ObservatoryRelated: IceCube measurements test how neutrinos change flavor over long distances.
Elementary particleRelated: Oscillations show that neutrinos have mass, beyond the minimal Standard Model.
Neutrinoless double beta decayRelated: Oscillation measurements constrain neutrino mixing but do not establish whether neutrinos are Majorana particles.
Kyoto UniversityBroader topic: Kajita’s research, partly rooted in Kyoto training, helped establish this phenomenon experimentally.
Neutrino mass orderingNarrower topic: Oscillations provide the measurements from which mass ordering can be inferred.
Solar neutrinoRelated: It explains why fewer electron neutrinos reach Earth than early detectors expected.
Sudbury Neutrino ObservatoryRelated: SNO’s results showed that solar electron neutrinos arrived on Earth as other active flavors too.
Lepton numberRelated: Oscillations showed that individual lepton flavors are not conserved exactly.
Yukawa interactionRelated: Oscillations establish neutrino mass, whose Yukawa origin is unknown.
LeptogenesisRelated: Measured neutrino mixing constrains models, but does not by itself establish the high-energy CP violation needed.
Radiative zoneRelated: It explains why solar neutrinos detect energy production deep beneath the radiative zone.
Sakharov conditionsRelated: Its CP-violating patterns may hint at, but do not establish, the CP violation behind leptogenesis.
Homestake experimentRelated: Oscillation later explained why Homestake detected fewer electron neutrinos than expected.
Muon neutrinoRelated: A muon neutrino can later be detected as an electron or tau neutrino.
Electron neutrinoRelated: It allows an electron neutrino to arrive as a different flavor.
GeoneutrinoRelated: Oscillations affect the fraction of electron antineutrinos that reach a detector.
FermilabRelated: Fermilab's MINOS and later experiments measured oscillations with accelerator neutrino beams.
Leggett–Garg inequalityRelated: Flavor measurements at different times provide temporal correlations for inequality tests.
Cosmic neutrino backgroundRelated: Oscillations reshape the relic flavor populations after neutrinos decouple.
Frederick ReinesRelated: Oscillation ultimately explained why solar-neutrino detectors found fewer electron neutrinos than expected.
Masatoshi KoshibaRelated: Later measurements with successor detectors resolved the solar-neutrino deficit Koshiba’s work helped expose.
Weak isospinRelated: Weak interactions create and detect neutrino flavor states within lepton doublets.
Melvin SchwartzRelated: Later evidence for flavor change built on the distinction between neutrino flavors Schwartz helped establish.
Arthur B. McDonaldBroader topic: McDonald’s measurements showed that solar neutrinos arrive on Earth in altered flavor proportions.
Cowan–Reines neutrino experimentRelated: Later reactor experiments used antineutrino detection to test this phenomenon, unknown in 1956.
Jack SteinbergerRelated: Distinguishing neutrino flavors made it possible to pose the later question of whether they transform into one another.
Takaaki KajitaNarrower topic: This is the phenomenon Kajita’s atmospheric-neutrino measurements established.
Tau neutrinoRelated: Oscillations show that tau neutrinos participate in flavor change and have nonzero mass.
Mikheyev–Smirnov–Wolfenstein effectNarrower topic: The effect modifies the oscillations that occur even in vacuum.
Subatomic particleRelated: Oscillations show that neutrinos have mass and that particle identity can change.
History of subatomic physicsRelated: Its evidence exposed physics beyond the original Standard Model and revised a basic assumption.
Martin Lewis PerlRelated: The tau neutrino completed the third lepton family later probed through flavor-changing neutrino studies.
Neutral particle oscillationBroader topic: It is the experimentally established example involving different neutral-particle flavors.