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On the design of ultrafast shutters for time‐resolved synchrotron experiments
Author(s) -
Gembicky Milan,
Coppens Philip
Publication year - 2007
Publication title -
journal of synchrotron radiation
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.172
H-Index - 99
ISSN - 1600-5775
DOI - 10.1107/s0909049506041835
Subject(s) - chopper , kinetic energy , synchrotron , optics , radius , duty cycle , photon , rotation (mathematics) , materials science , physics , energy (signal processing) , ultrashort pulse , computational physics , computer science , laser , classical mechanics , voltage , power (physics) , thermodynamics , computer security , quantum mechanics , artificial intelligence
A comprehensive treatment of the limitations and possibilities for single‐pulse selection in synchrotron operating modes with ∼150 ns bunch separation, as occurs in the standard operating mode at the Advanced Photon Source, is presented. It is shown that the strength of available materials and allowable kinetic energy build‐up limit single‐bunch selection for this separation to sample sizes of ∼100 µm, and that for minimization of kinetic energy build‐up it is preferable to increase the r.p.m. within physically acceptable limits rather than increase the disc radius to obtain a desirable peripheral speed. A slight modification of the equal‐bunch spacing standard fill patterns is proposed that allows use of samples as large as 500 µm. The corresponding peripheral speed of the chopper wheel is ∼600 m s −1 , which is within the limits of high‐strength titanium alloys. For smaller samples, peripheral speeds are proportionally lower. Versatility can be achieved with interchangeable chopper wheels and the use of different orientations of the rotation axis relative to the X‐ray beam, which opens the possibility of larger, rather than one‐of‐a‐kind, production runs.

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