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NON LINEAR-INVERSE-COMPTON-SCATTERING

  • Compton scattering
  • Scattering of photons off charged particles

    also called non-linear Compton scattering and multiphoton Compton scattering. It is the non-linear version of inverse Compton scattering in which the

    Compton scattering

    Compton scattering

    Compton_scattering

  • Non-linear inverse Compton scattering
  • Electron-many photon scattering

    Non-linear inverse Compton scattering (NICS), also known as non-linear Compton scattering and multiphoton Compton scattering, is the scattering of multiple

    Non-linear inverse Compton scattering

    Non-linear inverse Compton scattering

    Non-linear_inverse_Compton_scattering

  • Electron scattering
  • Deviation of electrons from their original trajectories

    electron scattering occurs and the beam passes straight through. Single scattering: when an electron is scattered just once. Plural scattering: when electron(s)

    Electron scattering

    Electron scattering

    Electron_scattering

  • Thomson scattering
  • Low energy photon scattering off charged particles

    low-energy limit of Compton scattering: the particle's kinetic energy and photon frequency do not change as a result of the scattering. This limit is valid

    Thomson scattering

    Thomson scattering

    Thomson_scattering

  • Nonlinearity (disambiguation)
  • Topics referred to by the same term

    wave structure Non-linear inverse Compton scattering (NICS; also known as non-linear Compton scattering or multiphoton Compton scattering), the process

    Nonlinearity (disambiguation)

    Nonlinearity_(disambiguation)

  • Attenuation coefficient
  • Light or sound absorption in a substance

    to two processes: absorption and scattering. Absorption indicates energy that is lost from the beam, while scattering indicates light that is redirected

    Attenuation coefficient

    Attenuation_coefficient

  • Breit–Wheeler process
  • Electron-positron production from two photons

    electrons will first radiate gamma photons via so-called non-linear inverse Compton scattering when interacting with the laser pulse. Still interacting

    Breit–Wheeler process

    Breit–Wheeler process

    Breit–Wheeler_process

  • Raman scattering
  • Inelastic scattering of photons by matter

    In chemistry and physics, Raman scattering or the Raman effect (/ˈrɑːmən/) is the inelastic scattering of photons by matter, meaning that there is both

    Raman scattering

    Raman scattering

    Raman_scattering

  • Elastic scattering
  • Particle collisions conserving kinetic energy

    Elastic scattering is a form of particle scattering in scattering theory, nuclear physics and particle physics. In this process, the internal states of

    Elastic scattering

    Elastic_scattering

  • Gamma ray
  • Penetrating form of electromagnetic radiation

    produce secondary gamma rays by the mechanisms of bremsstrahlung, inverse Compton scattering and synchrotron radiation. A large fraction of such astronomical

    Gamma ray

    Gamma ray

    Gamma_ray

  • Kramers' opacity law
  • Optical law in astrophysics

    electron) or free-free absorption (the absorption of light when scattering a free ion, inverse of bremsstrahlung). It is often used to model radiative transfer

    Kramers' opacity law

    Kramers'_opacity_law

  • Feynman diagram
  • Pictorial representation of the behavior of subatomic particles

    between scattering and correlation functions is the LSZ-theorem: The scattering amplitude for n particles to go to m particles in a scattering event is

    Feynman diagram

    Feynman diagram

    Feynman_diagram

  • Ionizing radiation
  • Harmful high-frequency radiation

    if linear energy transfer does occur. But, for many nuclei struck by neutrons, inelastic scattering occurs. Whether elastic or inelastic scatter occurs

    Ionizing radiation

    Ionizing radiation

    Ionizing_radiation

  • Cosmic microwave background
  • Trace radiation from the early universe

    potential. 1969 – R. A. Sunyaev and Yakov Zel'dovich study the inverse Compton scattering of microwave background photons by hot electrons (see Sunyaev–Zel'dovich

    Cosmic microwave background

    Cosmic microwave background

    Cosmic_microwave_background

  • Electromagnetic radiation
  • Physical model of propagating energy

    through space. It encompasses a broad spectrum, classified by frequency (inversely proportional to wavelength), ranging from radio waves, microwaves, infrared

    Electromagnetic radiation

    Electromagnetic radiation

    Electromagnetic_radiation

  • Matter wave
  • Quantum mechanical waves describing matter

    diffraction through the different scattering cross sections and sensitivity to magnetism. Small-angle neutron scattering provides way to obtain structure

    Matter wave

    Matter_wave

  • Electron
  • Elementary particle with negative charge

    between a photon (light) and a solitary (free) electron is called Compton scattering. This collision results in a transfer of momentum and energy between

    Electron

    Electron

    Electron

  • Optics
  • Branch of physics that studies light

    similar to other distances, as a kind of scattering. The simplest type of scattering is Thomson scattering which occurs when electromagnetic waves are

    Optics

    Optics

  • Klein–Gordon equation
  • Relativistic wave equation in quantum mechanics

    Schrödinger equation. Apart from its use in studying dispersion and Compton scattering, the equation was not very useful for treating most physical problems

    Klein–Gordon equation

    Klein–Gordon_equation

  • Quantum field theory
  • Theoretical framework in physics

    it was able to account for the scattering of photons, resonance fluorescence and non-relativistic Compton scattering. Nonetheless, the application of

    Quantum field theory

    Quantum field theory

    Quantum_field_theory

  • Schrödinger equation
  • Description of a quantum-mechanical system

    observable in that eigenstate. More generally, a quantum state will be a linear combination of the eigenstates, known as a quantum superposition. When an

    Schrödinger equation

    Schrödinger_equation

  • Yukawa potential
  • Screened Coulomb potential which exponentially decays

    attractive. In the SI system, the unit of the Yukawa potential is the inverse meter. The Coulomb potential of electromagnetism is an example of a Yukawa

    Yukawa potential

    Yukawa_potential

  • Dark matter
  • Hypothetical invisible cosmic material

    density scales with the inverse cube of the scale factor, i.e., ρ ∝ a−3 . This is in contrast to "radiation", which scales as the inverse fourth power of the

    Dark matter

    Dark matter

    Dark_matter

  • Astrophysical X-ray source
  • Astronomical object emitting X-rays

    ordinary Coulomb, black-body radiation, synchrotron radiation, inverse Compton scattering of lower-energy photons by relativistic electrons, knock-on collisions

    Astrophysical X-ray source

    Astrophysical X-ray source

    Astrophysical_X-ray_source

  • Abraham–Lorentz force
  • Recoil force on accelerating charged particle

    to this accelerated electron beam. In a small number of cases, inverse-Compton scattering occurs between the photons and the electron beam, and the spectra

    Abraham–Lorentz force

    Abraham–Lorentz force

    Abraham–Lorentz_force

  • William F. Meggers Award in Spectroscopy
  • Notes 2026 Majed Chergui For pioneering contributions in ultrafast linear and non-linear optical and X-ray spectroscopy and his seminal studies of the electronic

    William F. Meggers Award in Spectroscopy

    William_F._Meggers_Award_in_Spectroscopy

  • Glossary of physics
  • the energy of the photon is called the Compton effect. The opposite phenomenon occurs in inverse Compton scattering, when a charged particle transfers part

    Glossary of physics

    Glossary_of_physics

  • Industrial radiography
  • Type of non-destructive testing

    with X-rays at those energy levels are the photoelectric effect, compton scattering and pair production. After having crossed the object, the photons

    Industrial radiography

    Industrial radiography

    Industrial_radiography

  • Einstein's thought experiments
  • Albert Einstein's hypothetical situations to argue scientific points

    concept of the light quantum to prevail. In 1923, Arthur Compton was studying the scattering of high energy X-rays from a graphite target. Unexpectedly

    Einstein's thought experiments

    Einstein's_thought_experiments

  • Uncertainty principle
  • Foundational principle in quantum physics

    collision does not disturb the electron's momentum very much, but the scattering will reveal its position only vaguely. Problem 2 – If a large aperture

    Uncertainty principle

    Uncertainty principle

    Uncertainty_principle

  • Light front quantization
  • Technique in computational quantum field theory

    contribution to the generalized parton distributions for deeply virtual Compton scattering, which can be computed from the overlap of light-front wave functions

    Light front quantization

    Light front quantization

    Light_front_quantization

  • Dark energy
  • Energy driving the accelerated expansion of the universe

    scales with the inverse cube of the scale factor, i.e., ρ ∝ a−3, while radiation is anything whose energy density scales to the inverse fourth power of

    Dark energy

    Dark energy

    Dark_energy

  • Interstellar medium
  • Matter and radiation in the space between the star systems in a galaxy

    and bump up the photon energies to X-rays and gamma-rays, via inverse Compton scattering. Due to the galactic magnetic field, charged particles follow

    Interstellar medium

    Interstellar medium

    Interstellar_medium

  • History of physics
  • Historical development of physics

    "classical" world) was accepted when the Compton Effect established that light carries momentum and can scatter off particles, and when Louis de Broglie

    History of physics

    History_of_physics

  • Hans Bethe
  • German-American physicist (1906–2005)

    Albert Petschek, he came up with an approximation that converted the scattering equation into an easily solved differential equation. This then led him

    Hans Bethe

    Hans Bethe

    Hans_Bethe

  • Glossary of chemistry terms
  • Water has a special phase diagram. Tyndall effect The effect of light scattering by colloidal or suspended particles. Contents:  Top 0–9 A B C D E F G

    Glossary of chemistry terms

    Glossary_of_chemistry_terms

  • Timeline of thermodynamics
  • Kompaneets derives his Compton scattering Fokker–Planck equation 1957 – Ryogo Kubo derives the first of the Green-Kubo relations for linear transport coefficients

    Timeline of thermodynamics

    Timeline of thermodynamics

    Timeline_of_thermodynamics

  • Timeline of physical chemistry
  • of the original ray. This discovery, now known as the "Compton effect" or "Compton scattering", demonstrates the "particle" concept of electromagnetic

    Timeline of physical chemistry

    Timeline_of_physical_chemistry

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