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In vacuum, the speed of light is the speed at which electromagnetic waves propagate. The constant is denoted by c and has an exact SI value of 299,792,458 m/s. All electromagnetic radiation—including visible light—and other massless field disturbances (such as gravitational waves) travel at this same speed in vacuum, independent of the motion of the source or the observer’s inertial frame. This invariance of c plays a fundamental role in physics. Einstein’s postulate that c is the same for all inertial observers leads to special relativity, where c becomes the limiting speed for information, matter, and energy: no physical signal can travel faster than c without violating causality. In quantum electrodynamics, light is described by photons, which are massless and therefore must move at c in vacuum. In materials, however, electromagnetic waves propagate more slowly than c. The phase velocity depends on the medium and is related to the refractive index, while a finite light pulse travels with different characteristic velocities (group velocity for the pulse envelope and front velocity for the leading edge). Apparent “superluminal” effects can occur in certain wave phenomena or observational projections, but they do not correspond to actual information traveling faster than c.
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