Literature DB >> 18728319

Synchrotron applications of an amorphous silicon flat-panel detector.

John H Lee1, C Can Aydiner, Jonathan Almer, Joel Bernier, Karena W Chapman, Peter J Chupas, Dean Haeffner, Ken Kump, Peter L Lee, Ulrich Lienert, Antonino Miceli, German Vera.   

Abstract

A GE Revolution 41RT flat-panel detector (GE 41RT) from GE Healthcare (GE) has been in operation at the Advanced Photon Source for over two years. The detector has an active area of 41 cm x 41 cm with 200 microm x 200 microm pixel size. The nominal working photon energy is around 80 keV. The physical set-up and utility software of the detector system are discussed in this article. The linearity of the detector response was measured at 80.7 keV. The memory effect of the detector element, called lag, was also measured at different exposure times and gain settings. The modulation transfer function was measured in terms of the line-spread function using a 25 microm x 1 cm tungsten slit. The background (dark) signal, the signal that the detector will carry without exposure to X-rays, was measured at three different gain settings and with exposure times of 1 ms to 15 s. The radial geometric flatness of the sensor panel was measured using the diffraction pattern from a CeO(2) powder standard. The large active area and fast data-capturing rate, i.e. 8 frames s(-1) in radiography mode, 30 frames s(-1) in fluoroscopy mode, make the GE 41RT one of a kind and very versatile in synchrotron diffraction. The loading behavior of a Cu/Nb multilayer material is used to demonstrate the use of the detector in a strain-stress experiment. Data from the measurement of various samples, amorphous SiO(2) in particular, are presented to show the detector effectiveness in pair distribution function measurements.

Entities:  

Year:  2008        PMID: 18728319     DOI: 10.1107/S090904950801755X

Source DB:  PubMed          Journal:  J Synchrotron Radiat        ISSN: 0909-0495            Impact factor:   2.616


  4 in total

1.  An apparatus and method for directly measuring the depth-dependent gain and spatial resolution of turbid scintillators.

Authors:  Adrian Howansky; A R Lubinsky; Katsuhiko Suzuki; S Ghose; Wei Zhao
Journal:  Med Phys       Date:  2018-10-01       Impact factor: 4.071

2.  The MYTHEN detector for X-ray powder diffraction experiments at the Swiss Light Source.

Authors:  Anna Bergamaschi; Antonio Cervellino; Roberto Dinapoli; Fabia Gozzo; Beat Henrich; Ian Johnson; Philipp Kraft; Aldo Mozzanica; Bernd Schmitt; Xintian Shi
Journal:  J Synchrotron Radiat       Date:  2010-07-22       Impact factor: 2.616

3.  The Extreme Conditions Beamline P02.2 and the Extreme Conditions Science Infrastructure at PETRA III.

Authors:  H P Liermann; Z Konôpková; W Morgenroth; K Glazyrin; J Bednarčik; E E McBride; S Petitgirard; J T Delitz; M Wendt; Y Bican; A Ehnes; I Schwark; A Rothkirch; M Tischer; J Heuer; H Schulte-Schrepping; T Kracht; H Franz
Journal:  J Synchrotron Radiat       Date:  2015-06-19       Impact factor: 2.616

4.  Characterization of the crystal structure, kinematics, stresses and rotations in angular granular quartz during compaction.

Authors:  Ryan C Hurley; Eric B Herbold; Darren C Pagan
Journal:  J Appl Crystallogr       Date:  2018-06-28       Impact factor: 3.304

  4 in total

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