Wavelength
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- For other uses, see (disambiguation)}}}.
In a sine wave, the wavelength is the distance between the midpoints of the wave:
The x axis represents distance, and I would be some varying quantity at a given point in time as a function of x, for instance air pressure for a sound wave or strength of the electric or magnetic field for light.
Relationship with frequency
Wavelength λ has an inverse relationship to frequency f, the number of peaks to pass a point in a given time. The wavelength is equal to the speed of the wave type divided by the frequency of the wave. When dealing with electromagnetic radiation in a vacuum, this speed is the speed of light c. For sound waves in air, this is the speed of sound in air. The relationship is given by:- [ \lambda = \frac ]
- λ = wavelength of a sound wave or electromagnetic wave
- [ v_w ] is the speed of propogation of the wave, and
- f = frequency of the wave in 1/s = Hz.
For sound waves this relationship is approximated with the formula: wavelength λ (in metres) = 343 / frequency (in hertz).
Note that the speed of light [c = \times \frac] in a vacuum, and thus in a vacuum [ \lambda = \frac ] or [ \lambda = \frac ]
In non-vacuum mediums
When light waves (and other electromagnetic waves) enter a medium, their wavelength is reduced by a factor equal to the refractive index n of the medium but the frequency of the wave is unchanged. The wavelength of the wave in the medium, λ' is given by:- [\lambda^\prime = \frac ]
- λ0 is the vacuum wavelength of the wave
Quantum wavelength of particles
Louis de Broglie discovered that all particles with momentum have a wavelength associated with their quantum mechanical wavefunction, called the de Broglie wavelength:
- [ \lambda = \frac ]
- h is Planck's constant, and
- p is the momentum of the object.
See also
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