Confocal x-ray fluorescence microscopy (CXRF) allows direct detection of x-ray fluorescence from a micron-scale 3D volume of an extended, unthinned sample. We have previously demonstrated the use of a novel collection optic, fabricated from silicon, that improves the spatial resolution of this approach by an order of magnitude over CXRF using polycapillaries. The optic, called a collimating channel array (CCA), consists of micron-scale, lithographically-fabricated arrays of collimating channels, all directed towards a single source position. Due to the limited absorbing power of silicon, the useful energy range of these optics was limited to fluorescence emission below about 10 keV. Here, we report fabrication of CCAs from germanium substrates, and demonstrate their practical use for CXRF up to 20 keV. Specifically we demonstrate a nearly energy-independent critical spatial resolution dR of 2.1±0.17 µm from 2-20 keV, as well as excellent background reduction compared to silicon-based CCAs throughout this energy range. Design details of the optic and background-reduction holder are described. Two versions of the optic are now available upon request at the beamline 20ID-B, Advanced Photon Source (APS) - Argonne National Laboratory.
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30 August 2016
ICXOM23: International Conference on X-ray Optics and Microanalysis
14–18 September 2015
Upton, NY, USA
Research Article|
August 30 2016
Germanium collimating micro-channel arrays for high resolution, high energy confocal X-ray fluorescence microscopy Free
David N. Agyeman-Budu;
David N. Agyeman-Budu
a)
1Department of Materials Science and Engineering,
Cornell University
, Ithaca, NY 14853 USA
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Sanjukta Choudhury;
Sanjukta Choudhury
2Geol. Sciences,
Univ. of Saskatchewan
, 114 Science Place, Saskatoon SK S7N 5E2 Canada
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Ian Coulthard;
Ian Coulthard
3
Canadian Light Source
, 44 Innovation Blvd, Saskatoon, SK S7N 5E2 Canada
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Robert Gordon;
Robert Gordon
4Department of Physics,
Simon Fraser University
, Burnaby, BC, Canada
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Emil Hallin;
Emil Hallin
3
Canadian Light Source
, 44 Innovation Blvd, Saskatoon, SK S7N 5E2 Canada
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Arthur R. Woll
Arthur R. Woll
5
Cornell High Energy Synchrotron Source
, Ithaca, 14853 NY USA
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David N. Agyeman-Budu
1,a)
Sanjukta Choudhury
2
Ian Coulthard
3
Robert Gordon
4
Emil Hallin
3
Arthur R. Woll
5
1Department of Materials Science and Engineering,
Cornell University
, Ithaca, NY 14853 USA
2Geol. Sciences,
Univ. of Saskatchewan
, 114 Science Place, Saskatoon SK S7N 5E2 Canada
3
Canadian Light Source
, 44 Innovation Blvd, Saskatoon, SK S7N 5E2 Canada
4Department of Physics,
Simon Fraser University
, Burnaby, BC, Canada
5
Cornell High Energy Synchrotron Source
, Ithaca, 14853 NY USA
a)
Corresponding author: [email protected]
AIP Conf. Proc. 1764, 020004 (2016)
Citation
David N. Agyeman-Budu, Sanjukta Choudhury, Ian Coulthard, Robert Gordon, Emil Hallin, Arthur R. Woll; Germanium collimating micro-channel arrays for high resolution, high energy confocal X-ray fluorescence microscopy. AIP Conf. Proc. 30 August 2016; 1764 (1): 020004. https://doi.org/10.1063/1.4961132
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