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Sep 30, 2019 · Slowly, electron by electron, the wave pattern builds up. Just like light, sometimes matter acts like a particle, and sometimes, it acts like a wave. So, are light and matter made of waves or ...
A fundamental difference between wave and particle nature of light as a particle it can explain the photoelectric effect and as a wave, it can explain the reflection, diffraction, etc. Wave is the disturbance of some quantity in space or intermediate while a particle has a definite mass concentrated on a small area.
Sep 19, 2019 · 2 Answers. If a state is localized in position basis then it is called a particle (something that has a definite position) and if it is localized in the momentum basis then it is called a wave (something that has a definite wavelength, which, in Quantum Mechanics, relates to the momentum). Having said that, I would add that in practice, any ...
Dec 26, 2023 · The main difference between wave theory and particle theory is that wave theory, associated with phenomena like light, considers that energy travels in the form of waves, whereas particle theory, associated with matter, considers that energy behaves as discrete particles, such as photons. Wave theory and particle theory are fundamental concepts ...
Difference between particle and wave: -Particles are considered to be some matter lumped together and they move as a unity whereas waves are considered as disturbance means for a longitudinal wave propagation atoms vibrate about their mean position and thereby creating a disturbance in the medium. -Particle never shows interference effects as ...
May 1, 2024 · Light can behave as a particle (i.e. photons) and a wave; This phenomenon is called the wave-particle nature of light or wave-particle duality; Light interacts with matter, such as electrons, as a particle. The evidence for this is provided by the photoelectric effect; Light propagates through space as a wave
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May 17, 2016 · De Broglie, following Max Planck's lead, extrapolated Einstein's famous formula relating mass and energy to include Planck's constant: E = mc2 = h n. where E is the energy of a particle, m the mass, c is the speed of light, h is Planck's constant, and n is the frequency. De Broglie's work, which relates the frequency of a wave to the energy and ...