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  2. Polariton - Wikipedia

    en.wikipedia.org/wiki/Polariton

    In physics, polaritons / p ə ˈ l ær ɪ t ɒ n z, p oʊ-/ [1] are bosonic quasiparticles resulting from strong coupling of electromagnetic waves (photon) with an electric or magnetic dipole-carrying excitation (state) of solid or liquid matter (such as a phonon, plasmon, or an exciton).

  3. Magnon - Wikipedia

    en.wikipedia.org/wiki/Magnon

    A magnon is a quasiparticle, a collective excitation of the spin structure of an electron in a crystal lattice. In the equivalent wave picture of quantum mechanics, a magnon can be viewed as a quantized spin wave. Magnons carry a fixed amount of energy and lattice momentum, and are spin-1, indicating they obey boson behavior.

  4. Phonon polariton - Wikipedia

    en.wikipedia.org/wiki/Phonon_polariton

    The coupling of the phonon and the photon is the most promininent in the region where the original transverse disperion relations would have crossed. In the limit of large k , the solid lines of both branches approach the dotted lines, meaning, the coupling does not have a large impact on the behaviour of the vibrations.

  5. Exciton-polariton - Wikipedia

    en.wikipedia.org/wiki/Exciton-polariton

    The coupling of the two oscillators, photons modes in the semiconductor optical microcavity and excitons of the quantum wells, results in the energy anticrossing of the bare oscillators, giving rise to the two new normal modes for the system, known as the upper and lower polariton resonances (or branches). The energy shift is proportional to ...

  6. Quasiparticle - Wikipedia

    en.wikipedia.org/wiki/Quasiparticle

    A magnon is a collective excitation [1] associated with the electrons' spin structure in a crystal lattice. It is a quantum of a spin wave. In materials, a photon quasiparticle is a photon as affected by its interactions with the material.

  7. Coupling constant - Wikipedia

    en.wikipedia.org/wiki/Coupling_constant

    This means that the coupling becomes large at low energies, and one can no longer rely on perturbation theory. Hence, the actual value of the coupling constant is only defined at a given energy scale. In QCD, the Z boson mass scale is typically chosen, providing a value of the strong coupling constant of α s (M Z 2) = 0.1179 ± 0.0010. [7]

  8. Standard Model - Wikipedia

    en.wikipedia.org/wiki/Standard_Model

    The photon is massless and is described by the theory of quantum electrodynamics (QED). Strong Interactions: Gluons mediate the strong interactions, which binds quarks to each other by influencing the color charge, with the interactions being described in the theory of quantum chromodynamics (QCD). They have no mass, and there are eight ...

  9. Quantization of the electromagnetic field - Wikipedia

    en.wikipedia.org/wiki/Quantization_of_the...

    The photon having non-zero linear momentum, one could imagine that it has a non-vanishing rest mass m 0, which is its mass at zero speed. However, we will now show that this is not the case: m 0 = 0. Since the photon propagates with the speed of light, special relativity is called for. The relativistic expressions for energy and momentum ...