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  2. Journal of Synchrotron Radiation - Wikipedia

    en.wikipedia.org/wiki/Journal_of_Synchrotron...

    The Journal of Synchrotron Radiation is a bimonthly peer-reviewed scientific journal published by Wiley-Blackwell on behalf of the International Union of Crystallography.It was established in 1994 and covers research on synchrotron radiation and X-ray free-electron lasers and their applications.

  3. PILATUS (detector) - Wikipedia

    en.wikipedia.org/wiki/PILATUS_(detector)

    It became the first HPC detector to be widely used at synchrotron beamlines around the world. [ 2 ] The second generation PILATUS2 systems represented a major technological improvement, featuring a pixel size of 172×172μm, a counter depth of 20 bits and a radiation-tolerant design, necessary for operation with the intense X-ray beams at ...

  4. Synchrotron radiation - Wikipedia

    en.wikipedia.org/wiki/Synchrotron_radiation

    Synchrotron radiation was first observed by technician Floyd Haber, on April 24, 1947, at the 70 MeV electron synchrotron of the General Electric research laboratory in Schenectady, New York. [5] While this was not the first synchrotron built, it was the first with a transparent vacuum tube, allowing the radiation to be directly observed.

  5. X-ray absorption spectroscopy - Wikipedia

    en.wikipedia.org/wiki/X-ray_absorption_spectroscopy

    The experiment is usually performed at synchrotron radiation facilities, which provide intense and tunable X-ray beams. Samples can be in the gas phase, solutions, or solids. Samples can be in the gas phase, solutions, or solids.

  6. Diffraction-limited storage ring - Wikipedia

    en.wikipedia.org/wiki/Diffraction-limited...

    Diffraction-limited storage rings (DLSR), or ultra-low emittance storage rings, are synchrotron light sources where the emittance of the electron-beam in the storage ring is smaller or comparable to the emittance of the x-ray photon beam they produce at the end of their insertion devices.

  7. Synchrotron light source - Wikipedia

    en.wikipedia.org/wiki/Synchrotron_light_source

    Especially when artificially produced, synchrotron radiation is notable for its: High brilliance, many orders of magnitude more than with X-rays produced in conventional X-ray tubes: 3rd-generation sources typically have a brilliance larger than 10 18 photons·s −1 ·mm −2 ·mrad −2 /(0.1%BW), where 0.1%BW denotes a bandwidth 10 −3 ω centered around the frequency ω.

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