Light
Light is an electromagnetic wave that travels through vacuum at exactly 299,792,458 m/s and more slowly through materials. At a boundary it reflects (angle of reflection equals angle of incidence) and refracts according to Snell's law, n₁ sin θ₁ = n₂ sin θ₂. Visible light spans roughly 400–750 nm, and it also behaves as a stream of photons, each with energy E = hf.
Light as an Electromagnetic Wave and a Photon
Maxwell's equations predict transverse electromagnetic waves in free space travelling at c = 1/√(ε₀μ₀). Light was already known to be a wave travelling at that speed, so it had to be electromagnetic radiation; from 1887 Hertz produced and detected such waves in the laboratory and confirmed their speed. Today c is fixed exactly at 299,792,458 m/s.
Speed of electromagnetic waves in vacuum, and the wave relation linking frequency and wavelength.
In matter n(λ) varies with wavelength (dispersion): for water, n ≈ 1.331 at 660 nm (red) and 1.342 at 410 nm (violet). Snell's law then gives each colour a slightly different refraction angle, the origin of prism spectra and rainbows.
The photoelectric effect, explained by Einstein in 1905, shows light also delivers energy in quanta: E = hf = hc/λ. A 550 nm photon carries hc/λ = (6.626 × 10⁻³⁴)(3.00 × 10⁸)/(550 × 10⁻⁹) ≈ 3.61 × 10⁻¹⁹ J.
Full explanation — the complete reference version every reading depth is based on
What light is
Light is the small slice of the electromagnetic spectrum that human eyes respond to, from about 400 nm (violet) to about 750 nm (red). Like radio waves and X-rays it is a transverse wave of oscillating electric and magnetic fields, so it needs no medium — sunlight crosses the vacuum of space to reach us. Red light has the longest wavelength and lowest frequency of the visible colours; violet has the shortest and highest.
The speed of light in vacuum is a defining SI constant.
It links every electromagnetic wave's frequency to its wavelength.
Light in materials: the refractive index
Light slows down inside matter because it interacts with atoms. The refractive index n compares the two speeds. For visible light in ordinary transparent materials it is never faster than in vacuum, so n is at least 1.
Refractive index: speed of light in vacuum divided by its speed in the material.
- Air (0 °C): n ≈ 1.0003 — so close to 1 that it is usually taken as 1.
- Fresh water (20 °C): n ≈ 1.333, so light travels at about c/1.333 ≈ 2.25 × 10⁸ m/s in water.
- Crown glass: n ≈ 1.52.
- Diamond: n ≈ 2.419.
- These values are for yellow light of wavelength 589 nm; n changes slightly with wavelength.
Reflection and refraction
When light reaches a boundary, some reflects and some passes through. Angles are always measured from the normal — an imaginary line at right angles to the surface. The reflected ray leaves at the same angle it arrived. The transmitted ray changes direction (refracts): it bends towards the normal entering a higher-index material and away from it entering a lower-index one.
The law of reflection (left) and Snell's law of refraction (right).
Worked example: air into water
A ray in air (n₁ ≈ 1.00) meets still water (n₂ = 1.333) at 30° to the normal. Snell's law gives sin θ₂ = (1.00 × sin 30°) / 1.333 = 0.375, so θ₂ ≈ 22.0°: the ray bends towards the normal. The ScienceVerse light-refraction simulation uses n = 1.0003 for air and n = 1.33 for water by default and so reports about 22.1° for the same ray — the small difference comes only from rounding the indices.
Total internal reflection
Going the other way, from water into air, the ray bends away from the normal. At one particular angle of incidence, the critical angle, the refracted ray would skim along the surface at 90°. Beyond it no light escapes: all of it reflects back. This can only happen when light travels towards a material with a lower refractive index.
Critical angle for total internal reflection. For water to air it is 48.6°.
That textbook value uses n = 1.333 for water and takes air as exactly 1. The ScienceVerse light-refraction simulation uses n = 1.33 for water and 1.0003 for air, so it reports a critical angle of about 48.8° (sin⁻¹(1.0003/1.33), our calculation) — the same physics with slightly different inputs, which is why it describes the water–air critical angle as about 49°.
Optical fibres exploit this: light inside a thin glass or plastic fibre keeps hitting the wall beyond the critical angle and is guided along it, carrying telephone, internet and cable TV signals.
Colour, dispersion and photons
Because n depends slightly on wavelength — water's index is about 1.331 for red light and 1.342 for violet — each colour refracts by a slightly different angle. White light therefore fans out into a spectrum in a prism, and refraction and reflection inside raindrops produce rainbows. Light also arrives in packets called photons: each carries energy E = hf, so violet photons carry more energy than red ones.
Photon energy, with h = 6.62607015 × 10⁻³⁴ J s exactly.
Where light connects
Light is a special case of Waves, so wavelength, frequency and interference all apply. It is produced and explained by the coupling of Electricity and Magnetism, and its photons carry Energy. Large telescopes use reflection to form images of stars, and fibre-optic internet depends on total internal reflection.
How we know
- Ole Roemer made the first measurement of light's speed in 1675 by timing eclipses of Jupiter's moon Io, which arrived early or late depending on how far Earth was from Jupiter.
- Snell discovered the law of refraction in 1621; Ibn Sahl had found it earlier, in 984.
- Maxwell's equations predicted electromagnetic waves travelling at the speed of light, and from 1887 Heinrich Hertz produced and detected such waves and confirmed their speed.
- Einstein's 1905 explanation of the photoelectric effect treated light as a stream of photons, each with energy E = hf.
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Connections
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Related concepts
- Cosmic expansion — Related to
- Waves — Special case of
- Energy — Related to
- Stars — Related to
- Magnetism — Historically followed from
- Thermodynamics — Related to
- Atoms — Related to
- Computer vision — Related to
- Internet — Applied in
- Photosynthesis — Related to
- Sensors — Applied in
- Networks — Applied in
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Sources and methodology
- The speed of light in vacuum, c, is exactly 299,792,458 m/s; it is a defining constant with no uncertainty. (awaiting scientific review)
- CODATA Value: speed of light in vacuum — Government or standards body
- The refractive index of a material is n = c/v, where v is the speed of light in the material; for visible light in ordinary transparent materials light is slower than in vacuum, so n is at least 1. (awaiting scientific review)
- For light of wavelength 589 nm, the refractive index is about 1.333 for fresh water at 20 °C, 1.52 for crown glass and 2.419 for diamond, and about 1.0003 for air at 0 °C. (awaiting scientific review)
- The law of reflection states that the angle of reflection equals the angle of incidence, both measured from the normal to the surface. (awaiting scientific review)
- Snell's law of refraction states that n₁ sin θ₁ = n₂ sin θ₂ for light crossing a boundary between two media, with angles measured from the normal. (awaiting scientific review)
- Willebrord Snell discovered the law of refraction in 1621. (awaiting scientific review)
- The law of refraction was found earlier by Ibn Sahl in 984, who used it in his work On Burning Mirrors and Lenses. (awaiting scientific review)
- A light ray bends towards the normal when it enters a medium with a higher refractive index, and away from the normal when it enters a medium with a lower one. (awaiting scientific review)
- Total internal reflection occurs when light in a medium of higher refractive index meets a boundary with a lower-index medium at an angle greater than the critical angle θc = sin⁻¹(n₂/n₁); the critical angle is 48.6° for water to air and 24.4° for diamond to air. (awaiting scientific review)
- Optical fibres use total internal reflection to carry light signals for telephone, internet and cable TV. (awaiting scientific review)
- In a given material the refractive index depends on wavelength, so white light spreads into its colours (dispersion); rainbows are produced by this dispersion through a combination of refraction and reflection in raindrops. (awaiting scientific review)
- Visible light is the part of the electromagnetic spectrum from about 400 nm to about 750 nm; red light has the longest wavelengths and lowest frequencies, violet the shortest and highest. (awaiting scientific review)
- Light is made of photons, each carrying an energy E = hf that depends only on the light's frequency f, where h is Planck's constant. (awaiting scientific review)
- Planck's constant h is exactly 6.62607015 × 10⁻³⁴ J s (J Hz⁻¹) in the SI. (awaiting scientific review)
- CODATA value: Planck constant h — Government or standards body
- Maxwell's theory predicted electromagnetic waves that travel at the speed of light, and Heinrich Hertz confirmed experimentally from 1887 that such waves exist and travel at that speed. (awaiting scientific review)
- An electromagnetic wave is transverse, with oscillating electric and magnetic fields perpendicular to its direction of travel, and in free space it travels at c = 1/√(ε₀μ₀). (awaiting scientific review)
- It is not safe to look directly at the Sun without specialised solar eye protection; ordinary sunglasses, however dark, are not safe, and viewing the Sun through binoculars, a camera lens or a telescope without a proper solar filter causes severe eye injury. (awaiting scientific review)
- Eclipse Safety — Government or standards body
- The first measurement of the speed of light was made by Ole Roemer in 1675, from timing the eclipses of Jupiter's moon Io. (awaiting scientific review)
- For a given medium the refractive index increases as the wavelength decreases: for water it is 1.331 for red light (660 nm) and 1.342 for violet light (410 nm), so violet light is bent more than red. (awaiting scientific review)
- The photoelectric effect was explained in 1905 by Albert Einstein, who treated light of frequency f as a stream of photons. (awaiting scientific review)
Claims marked “awaiting scientific review” cite the sources listed but have not yet been signed off by a scientific reviewer.
Content status: published 1 October 2026.
- Scientific review: this version has not yet been signed off by a scientific reviewer.
- The Advanced explanation has not yet been reviewed for age suitability.