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The 59 pages that link to Photoelectric effect, each with the reason it gives.
Quantum mechanicsRelated: Einstein's photon explanation showed light transfers energy in quanta.
Albert EinsteinRelated: Einstein explained its frequency threshold by treating light as energy packets, work honored by his Nobel Prize.
PhotonRelated: Its frequency threshold shows that light transfers energy in photon-sized amounts.
Ionizing radiationRelated: It explains how X-rays and gamma rays can eject bound electrons.
Planck constantRelated: Einstein’s explanation used photon energy hf to account for the frequency threshold.
Max PlanckRelated: Einstein used Planck’s energy quantum to explain why light frequency controls electron emission.
X-rayRelated: Absorption of an X-ray can eject a bound electron and leave an atomic vacancy.
Charge-coupled deviceRelated: In a CCD, absorbed photons generate electron–hole pairs that supply the image charge.
Gamma rayRelated: At lower gamma-ray energies, absorption can eject an electron from an atom.
OpticsRelated: Its dependence on light frequency supported the photon model.
X-ray fluorescenceRelated: Absorption of an incident X-ray can eject an inner-shell electron and initiate fluorescence.
PhotodetectorRelated: It explains how photons can free charge carriers that produce a measurable current.
X-ray spectroscopyRelated: Photoelectron spectroscopy converts photon energies into electron binding energies.
PhotoionizationRelated: It is the closely related surface process, governed by photon energy and electron binding.
Photomultiplier tubeRelated: Light releases electrons from the photocathode, beginning the signal chain.
Wave–particle dualityRelated: Its energy thresholds supported the idea that light transfers energy in discrete quanta.
Heinrich HertzRelated: Ultraviolet light altered the sparks in Hertz’s receiver, an early observation of this effect.
RadiographyRelated: This interaction contributes strongly to contrast between bone and soft tissue.
Ultraviolet catastropheRelated: Its later explanation provided independent evidence for quantized light–matter interactions.
Work functionRelated: Its threshold frequency reveals the work needed to eject an electron.
Corpuscular theory of lightRelated: Einstein explained its frequency threshold by treating light energy as discrete quanta, a modern particle aspect distinct from corpuscles.
De Broglie wavelengthRelated: Einstein’s photon explanation supplied the light-matter relation that inspired de Broglie’s symmetry.
Quantum efficiencyRelated: Photoelectron yield is one form of quantum efficiency.
Matter waveRelated: Einstein's photon explanation supplied the wave-particle precedent de Broglie extended to matter.
Gamma-ray spectroscopyRelated: Complete photon absorption can produce the full-energy peaks used for identification.
Quantum theoryRelated: Its frequency threshold supported the idea that light exchanges energy in discrete quanta.
Scintillation detectorRelated: Photocathodes use this effect to convert scintillation photons into electrons.
Robert MillikanRelated: Millikan measured how emitted electrons’ energies varied with light frequency.
Arthur ComptonRelated: It had already shown that light exchanges energy with matter in particle-like quanta.
X-ray detectorRelated: In many detectors, this interaction converts an incoming X-ray into an energetic electron.
Planck relationRelated: Einstein used photon energies hν to explain why emission depends on light frequency.
CaesiumRelated: Caesium’s low work function lets visible light release electrons from suitable surfaces.
QuantizationRelated: Einstein explained its frequency threshold using quantized light energy.
Modern physicsRelated: Einstein’s explanation used light quanta, strengthening the case for quantum theory.
Willard BoyleRelated: In image sensors, incoming photons generate the charge that a CCD later transfers and measures.
Annalen der PhysikRelated: Einstein's 1905 explanation of this effect appeared in the journal.
History of quantum mechanicsRelated: Its frequency dependence supported Einstein's light-quantum explanation.
Oil-drop experimentRelated: Millikan's other major research program tested Einstein's explanation using a distinct measurement method.
Radiation (physics)Related: It demonstrates how matter absorbs radiation in discrete energy transfers.
De Broglie equationRelated: Einstein’s light-quantum explanation provided a precedent for matter’s wave-particle symmetry.
Gamma-ray techniquesRelated: Full-energy absorption through this interaction supports gamma-ray imaging and spectroscopy.
Owen RichardsonRelated: Richardson also investigated this effect, which linked his experimental work to theories of light and electrons.
PhototubeRelated: It is the physical process that releases electrons from the phototube’s cathode.
Planck postulateRelated: Einstein used light quanta to explain its frequency-dependent behavior.
QuantumRelated: Its frequency-dependent threshold supported the idea that light transfers energy in quanta.