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The photoelectric effect is the emission of electrons from a material when it is illuminated by electromagnetic radiation such as ultraviolet light. The emitted electrons are called photoelectrons. Studying this phenomenon helps reveal quantum properties of atoms, molecules, and solids, and it also underpins technologies that require light detection and precisely timed electron emission. Experiments show results that contradict classical electromagnetism: instead of energy building up gradually with light intensity, electrons are emitted only when the light frequency exceeds a material-specific threshold. For a fixed frequency, the maximum kinetic energy of emitted electrons depends on the photon energy, not on the light intensity; increasing intensity mainly increases the number of emitted electrons (and thus the photoelectric current). The emission occurs with negligible time lag (typically less than 10^-9 s), and the energy balance is described by Einstein’s relation: Kmax = hν − W, where W is the work function (minimum energy needed to release an electron from the material).
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