A report on Photon, Wave–particle duality and Light
A photon is an elementary particle that is a quantum of the electromagnetic field, including electromagnetic radiation such as light and radio waves, and the force carrier for the electromagnetic force.
- PhotonLike all elementary particles, photons are currently best explained by quantum mechanics, and exhibit wave–particle duality, their behavior featuring properties of both waves and particles.
- PhotonLike all types of electromagnetic radiation, visible light propagates by massless elementary particles called photons that represents the quanta of electromagnetic field, and can be analyzed as both waves and particles.
- LightDemocritus (5th century BC) argued that all things in the universe, including light, are composed of indivisible sub-components.
- Wave–particle dualityEinstein's "light quanta" would not be called photons until 1925, but even in 1905 they represented the quintessential example of wave–particle duality.
- Wave–particle duality2 related topics with Alpha
Electron
1 linksSubatomic particle whose electric charge is negative one elementary charge.
Subatomic particle whose electric charge is negative one elementary charge.
Like all elementary particles, electrons exhibit properties of both particles and waves: They can collide with other particles and can be diffracted like light.
Electrons radiate or absorb energy in the form of photons when they are accelerated.
In his 1924 dissertation Recherches sur la théorie des quanta (Research on Quantum Theory), French physicist Louis de Broglie hypothesized that all matter can be represented as a de Broglie wave in the manner of light.
Photoelectric effect
1 linksThe photoelectric effect is the emission of electrons when electromagnetic radiation, such as light, hits a material.
Because a low-frequency beam at a high intensity does not build up the energy required to produce photoelectrons, as would be the case if light's energy accumulated over time from a continuous wave, Albert Einstein proposed that a beam of light is not a wave propagating through space, but a swarm of discrete energy packets, known as photons.
Study of the photoelectric effect led to important steps in understanding the quantum nature of light and electrons and influenced the formation of the concept of wave–particle duality.