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The determination of chromic oxide in faeces samples by atomic absorption spectrophotometry

Published online by Cambridge University Press:  27 March 2009

C. H. Williams
Affiliation:
Division of Plant Industry, C.S.I.R.O., Canberra
D. J. David
Affiliation:
Division of Plant Industry, C.S.I.R.O., Canberra
O. Iismaa
Affiliation:
Division of Plant Industry, C.S.I.R.O., Canberra

Extract

A rapid and accurate atomic absorption method for the determination of chromium in faeces samples from pasture experiments using chromic oxide ‘markers’ is described. Of the elements present after ashing and digesting the samples in a phosphoric acid—manganese sulphate—potassium bromate solution silicate, aluminium, calcium and magnesium were found to interfere in the determination. The effects of these interferences were overcome by the addition of calcium to the test solution and by the addition of silicate to the standards, which were prepared in ‘blank’ solutions.

The sensitivities of a number of alternate chromium resonance lines relative to that of Cr 3578·7 Å. are given. These lines may be used to increase the concentration range of the analysis.

The results of a comparison of the atomic absorption method with a chemical method are given.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1962

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References

REFERENCES

Allan, J. E. (1962). Spectrochim. Acta, 18, 259.CrossRefGoogle Scholar
Bolin, D. W., King, R. P. & Klosterman, E. W. (1952). Science, 116, 634.CrossRefGoogle Scholar
Christian, K. R. & Coup, M. R. (1954). N.Z. J. Sci. Tech. A, 36, 328.Google Scholar
David, D. J. (1959). Analyst, 84, 536.CrossRefGoogle Scholar
David, D. J. (1961). Analyst, 86, 730.CrossRefGoogle Scholar
Gatehouse, B. & Willis, J. B. (1961). Spectrochim. Acta, 17, 710.CrossRefGoogle Scholar
Gehrke, C. W., Mayer, D. T., Picket, E. E. & Runyon, C. U. (1950). Bull. Mo. Agric. Exp. Sta. no. 469.Google Scholar
Kimura, F. T. & Miller, V. L. (1957). J. Agric. Fd Chem. 5, 216.CrossRefGoogle Scholar
Moore, C. E. (1945). A Multiplet Table of Astrophysical Interest, Pt. 1. Revised Ed. Princeton Observatory, New Jersey.Google Scholar
Russell, B. J., Shelton, J. P. & Walsh, A. (1957). Spectrochim. Acta, 8, 317.CrossRefGoogle Scholar
Schurch, A. F., Lloyd, L. E. & Crampton, E. W. (1950). J. Nutr. 41, 629.CrossRefGoogle Scholar
Walsh, A. (1955). Spectrochim. Acta, 7, 108.CrossRefGoogle Scholar
Williams, C. H. (1960). Anal. Chim. Acta, 22, 163.CrossRefGoogle Scholar