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  • grazing-incidence small-angle X-ray scatteringGISAXSbeam footprintlithographic inspectiongratings  (2)
  • Big-Science facilitiesILLESRFESS  (1)
  • CHA zeolitescatalytic activitylocation of Cu2+synchrotron powder X-ray diffractionRietveld/maximum entropy method  (1)
  • EIGERhybrid pixel detectorselectron crystallographySAPO-34  (1)
  • International Union of Crystallography (IUCr)  (5)
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Keywords
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  • International Union of Crystallography (IUCr)  (5)
Years
  • 1
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    International Union of Crystallography (IUCr)
    In: IUCrJ
    Publication Date: 2016-09-01
    Keywords: Big-Science facilitiesILLESRFESS
    Electronic ISSN: 2052-2525
    Topics: Geosciences , Physics
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  • 2
    Publication Date: 2014-11-12
    Description: Accurate structural models of reaction centres in zeolite catalysts are a prerequisite for mechanistic studies and further improvements to the catalytic performance. The Rietveld/maximum entropy method is applied to synchrotron powder X-ray diffraction data on fully dehydrated CHA-type zeolites with and without loading of catalytically active Cu2+ for the selective catalytic reduction of NOx with NH3. The method identifies the known Cu2+ sites in the six-membered ring and a not previously observed site in the eight-membered ring. The sum of the refined Cu occupancies for these two sites matches the chemical analysis and thus all the Cu is accounted for. It is furthermore shown that approximately 80% of the Cu2+ is located in the new 8-ring site for an industrially relevant CHA zeolite with Si/Al = 15.5 and Cu/Al = 0.45. Density functional theory calculations are used to corroborate the positions and identity of the two Cu sites, leading to the most complete structural description of dehydrated silicoaluminate CHA loaded with catalytically active Cu2+ cations.
    Keywords: CHA zeolitescatalytic activitylocation of Cu2+synchrotron powder X-ray diffractionRietveld/maximum entropy method
    Electronic ISSN: 2052-2525
    Topics: Geosciences , Physics
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  • 3
    Publication Date: 2018-06-26
    Description: An error in the paper by Pflüger, Soltwisch, Probst, Scholze & Krumrey [IUCrJ (2017), 431–438] is corrected.
    Keywords: grazing-incidence small-angle X-ray scatteringGISAXSbeam footprintlithographic inspectiongratings
    Electronic ISSN: 2052-2525
    Topics: Geosciences , Physics
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  • 4
    Publication Date: 2017-05-25
    Description: Grazing-incidence small-angle X-ray scattering (GISAXS) is often used as a versatile tool for the contactless and destruction-free investigation of nanostructured surfaces. However, due to the shallow incidence angles, the footprint of the X-ray beam is significantly elongated, limiting GISAXS to samples with typical target lengths of several millimetres. For many potential applications, the production of large target areas is impractical, and the targets are surrounded by structured areas. Because the beam footprint is larger than the targets, the surrounding structures contribute parasitic scattering, burying the target signal. In this paper, GISAXS measurements of isolated as well as surrounded grating targets in Si substrates with line lengths from 50 µm down to 4 µm are presented. For the isolated grating targets, the changes in the scattering patterns due to the reduced target length are explained. For the surrounded grating targets, the scattering signal of a 15 µm × 15 µm target grating structure is separated from the scattering signal of 100 µm × 100 µm nanostructured surroundings by producing the target with a different orientation with respect to the predominant direction of the surrounding structures. As virtually all lithographically produced nanostructures have a predominant direction, the described technique allows GISAXS to be applied in a range of applications, e.g. for characterization of metrology fields in the semiconductor industry, where up to now it has been considered impossible to use this method due to the large beam footprint.
    Keywords: grazing-incidence small-angle X-ray scatteringGISAXSbeam footprintlithographic inspectiongratings
    Electronic ISSN: 2052-2525
    Topics: Geosciences , Physics
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  • 5
    Publication Date: 2018-02-15
    Description: Electron crystallography is a discipline that currently attracts much attention as method for inorganic, organic and macromolecular structure solution. EIGER, a direct-detection hybrid pixel detector developed at the Paul Scherrer Institut, Switzerland, has been tested for electron diffraction in a transmission electron microscope. EIGER features a pixel pitch of 75 × 75 µm2, frame rates up to 23 kHz and a dead time between frames as low as 3 µs. Cluster size and modulation transfer functions of the detector at 100, 200 and 300 keV electron energies are reported and the data quality is demonstrated by structure determination of a SAPO-34 zeotype from electron diffraction data.
    Keywords: EIGERhybrid pixel detectorselectron crystallographySAPO-34
    Electronic ISSN: 2052-2525
    Topics: Geosciences , Physics
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