Hostname: page-component-7bb8b95d7b-s9k8s Total loading time: 0 Render date: 2024-10-01T22:15:10.082Z Has data issue: false hasContentIssue false

Use of Primary Beam Filtration in Estimating Mass Attenuation Coefficients by Compton Scattering

Published online by Cambridge University Press:  06 March 2019

B. H. O'Connor
Affiliation:
School of Physics and Geosciences Western Australian Institute of Technology Bentley, Western Australia6102
W–J. Chang
Affiliation:
School of Physics and Geosciences Western Australian Institute of Technology Bentley, Western Australia6102
Get access

Abstract

Mass attenuation coefficients (MACs) are frequently estimated over a range of wavelengths in x-ray spectrometry from the intensity of the Compton peak IC associated with a prominent tube line. The MAC μλ at wavelength λ is estimated from the MAC at the Compton wavelength λC with the approximations μλ α μC and μC α 1/IC. Systematic errors may introduce absorption edge bias (AEB) effects into the results, caused by sample components vith absorption edges between λc and λ. A procedure is described which eliminates AEB effects by measuring IC using emission radiation from a primary beam filter.

Type
II. Mathematical Models and Computer Applications in XRF
Copyright
Copyright © International Centre for Diffraction Data 1984

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

1. Reynolds, R.C., Am. Mineral. 48: 1133 (1963).Google Scholar
2. Reynolds, R.C., Am. Mineral. 52: 1493 (1967).Google Scholar
3. Tertian, R. and Claisse, F., “Principles of Quantitative X-ray Fluorescence Analysis”. p 31. Heyden, London (1982).Google Scholar
4. Mills, J.C., Turner, K.E., Roller, P.W. and Belcher, C.B. X-ray Spectrom. 10: 131 (1981).Google Scholar
5. Norrish, K. and Chappell, B.W., in “Physical Methods in Determinative Mineralogy”, ed. Zussman, J.. 2nd edition, p 484. Academic Press, New York (1977).Google Scholar
6. Heinrich, K.F.J, in “The Electron Microprobe”, eds. McKinley, Heinrich and Wittry, . p 296. Wiley, New York (1966).Google Scholar
7. Burek, R.. J. Radioanal. Chem, 68, 199 (1982).Google Scholar