KnowraExcitonLinked fromLinked fromThe 21 pages that link to Exciton, each with the reason it gives.All 21Broader topic 2Related 14Compared with 5Band gapRelated: Exciton creation energies can lie below the energy needed for free carriers across the gap.PhotochemistryRelated: Exciton transport and dissociation can determine whether absorbed light drives useful chemistry.PhotoluminescenceRelated: Excitons often serve as the emitting excited states in semiconductors.Quantum dotRelated: Optical absorption and emission create or annihilate excitons in a quantum dot.Zinc oxideRelated: ZnO’s relatively large exciton binding energy supports excitonic effects near room temperature.Quantum wellRelated: Confinement strengthens electron–hole interactions and changes exciton energies.ElectroluminescenceRelated: Exciton recombination can produce light in organic and other semiconductors.Quantum confinementRelated: Electron–hole interactions modify optical transitions in confined structures.AnthraceneRelated: Excitations in anthracene crystals can migrate before emitting light or being quenched.Perovskite solar cellRelated: Photon absorption creates excited charge states that must separate for current to flow.OLEDRelated: Electron–hole pairs form excited states whose decay can produce OLED light.Band structure methodsRelated: Electron–hole attraction shifts optical features beyond independent-electron band predictions.Ultrafast laser spectroscopyRelated: Ultrafast spectroscopy follows exciton formation, transport, and recombination.Valence and conduction bandsRelated: Electron-hole interactions can modify optical behavior near the band edge.