Linked from
The 58 pages that link to Synchrotron radiation, each with the reason it gives.
Radio astronomyRelated: It produces radio emission from sources such as supernova remnants and active galaxies.
Thermal radiationCompared with: Its source is accelerated particles rather than matter's thermal state.
Black-body radiationCompared with: Unlike black-body emission, its spectrum arises from particle acceleration, not temperature alone.
Supernova remnantRelated: Relativistic electrons in remnant magnetic fields produce much of its radio emission.
Particle acceleratorRelated: Unintended radiation losses became a powerful tool for imaging and materials research.
PulsarRelated: Relativistic particles in pulsar magnetospheres produce nonthermal radiation through magnetic-field-driven motion.
Relativistic jetRelated: It produces much of the radio through X-ray emission observed from jets.
Cherenkov radiationCompared with: It requires curved motion rather than superluminal motion relative to a material’s light phase velocity.
PhotoionizationRelated: Its intense, adjustable photon energies enable detailed photoionization experiments.
Gamma-ray burstRelated: It explains much of the broadband afterglow emission from burst shocks.
BremsstrahlungCompared with: It also arises from acceleration, but typically from sustained curved motion rather than a single scattering.
Brookhaven National LaboratoryRelated: Brookhaven’s National Synchrotron Light Source II produces this radiation for experiments.
Radio galaxyRelated: Relativistic electrons in radio-galaxy jets and lobes produce much of their radio emission this way.
Crab NebulaRelated: It produces much of the Crab’s emission, from radio waves to high-energy light.
Neutron scatteringCompared with: Synchrotron X-rays offer complementary resolution and flux for structural studies.
Charged particleRelated: It carries energy away from particles forced onto curved trajectories.
Doppler beamingRelated: It is a common jet emission mechanism whose observed strength is altered by beaming.
Inverse Compton scatteringCompared with: It uses the same energetic electrons but produces photons through magnetic deflection rather than scattering.
Diamond anvil cellRelated: Its intense, focused X-rays enable diffraction from the cell’s minute sample.
BlazarRelated: It produces much of a blazar’s radio-to-optical and X-ray emission.
Stanford Linear Accelerator CenterRelated: SLAC converts accelerated electrons into intense light for research.
SynchrotronRelated: The radiation is an energy loss in colliders and a powerful experimental resource in light sources.
Centaurus ARelated: It produces much of the radio emission from Centaurus A’s jets and lobes.
Free-electron laserNarrower topic: It is the broader radiation phenomenon that includes emission from undulators.
Small-angle X-ray scatteringRelated: Synchrotron beams enabled faster, more precise SAXS measurements on weakly scattering samples.
PETRARelated: Bending the stored beams caused energy loss through synchrotron radiation, a key design constraint.
Cassiopeia ARelated: Relativistic electrons in Cassiopeia A’s shocks produce its bright radio emission this way.
ElectrodynamicsBroader topic: It links charged-particle motion to radiation used in research facilities.
Faraday rotationRelated: Its intrinsic polarization can be modified by Faraday rotation while crossing the emitting plasma.
Interstellar magnetic fieldRelated: Its intensity and polarization reveal magnetized regions of the interstellar medium.
Pulsar wind nebulaRelated: Relativistic electrons spiraling through nebular magnetic fields produce much of its observed light.
X-ray absorption spectroscopyRelated: Its tunable, bright X-rays make energy-scanned measurements practical.
Jupiter's magnetosphereRelated: Energetic electrons in Jupiter's radiation belts produce detectable radio emission.
Cherenkov detectorCompared with: Both involve charged-particle light, but synchrotron emission requires acceleration rather than exceeding light speed in a medium.
Crab PulsarRelated: Relativistic particles from the Crab Pulsar produce much of the nebula’s broadband glow this way.
Messier 87Related: Synchrotron emission makes M87’s jet visible across radio and other wavelengths.
Cygnus ARelated: This process produces most of the extended radio emission mapped around Cygnus A.
3C 273Related: Relativistic electrons in 3C 273's jet produce its strong radio and optical emission.
Relativistic mechanicsRelated: Relativistic particle speeds concentrate this radiation into a narrow forward beam.
Astrophysical maserCompared with: It produces broad radio continua, rather than molecular spectral lines amplified by stimulated emission.
Cyclotron radiationCompared with: At relativistic energies, cyclotron emission becomes the beamed, broadband synchrotron regime.
Larmor formulaBroader topic: Its classical power law generalizes the acceleration dependence in this formula.
Neutron imagingRelated: Synchrotron X-rays offer complementary contrast and resolution for materials also studied with neutrons.
SN 1054Related: It explains much of the Crab Nebula's continuous radiation.
Astrophysical jetRelated: It produces much of the radio and higher-frequency emission observed from jets.
High-energy astrophysicsRelated: Its characteristic spectrum identifies relativistic electrons and magnetic fields in cosmic sources.
Markarian 421Related: It produces the lower-energy component of Markarian 421’s broad emission spectrum.
Markarian 501Related: Relativistic electrons in the jet produce much of the source’s radio-to-X-ray emission this way.
Robert BrownRelated: It is a major mechanism behind radio emission in energetic Galactic-center sources.
Accelerator applicationsRelated: Storage rings produce intense beams of X-rays for imaging and materials research.