A Method for Analysis of Plant Tissue by Direct Reading Spark Emission Spectroscopy
- 1 January 1974
- journal article
- research article
- Published by SAGE Publications in Applied Spectroscopy
- Vol. 28 (1) , 5-8
- https://doi.org/10.1366/000370274774332894
Abstract
A procedure was developed for the rapid quantitative determination of K, P, Ca, Mg, Mn, Fe, Cu, B, and Zn content in plant tissue by direct reading emission spectrometry using spark excitation and the rotating disc electrode technique. Aliquots of standard reference material, ground to pass a 40 mesh screen, are weighed into high form porcelain crucibles and ashed at 450°C for 6 h. Five milliliters of an internal standard-buffer solution (0.2% cobalt and 0.5% lithium in 1 N HCl) are added to the remaining ash. The resulting solution is subjected to a 30-sec burn on the spectrometer, and the intensity ratios for each element are recorded. Known concentrations ( X) and intensity ratio units ( Y) are entered into a stepwise regression computer program, and the linear, quadratic, and cubic regressions of Y on X are determined. Sample values are entered as Y into the appropriate regression equation which is then solved for X. If quadratic or cubic regression equations are used, the program will select the appropriate root. Relative standard deviations for samples determined over a several-day period generally were less than 10%.Keywords
This publication has 6 references indexed in Scilit:
- Analysis of Plant-Ash Solutions by Spark-Emission SpectroscopyPublished by Springer Nature ,1969
- Direct emission spectrographic method for trace elements in biological materialsAnalytical Chemistry, 1968
- Technique for Rapid Analyses of Corn Leaves for Eleven Elements1Agronomy Journal, 1964
- Condensed Direct Current Arc Excitation for Spectrochemical Analysis of Plant MaterialsAnalytical Chemistry, 1958
- Spectrochemical Analysis of Plant Material Using Spark ExcitationAnalytical Chemistry, 1953
- Direct Spectrochemical Analysis of Solutions Using Spark Excitation and Porous Cup ElectrodeAnalytical Chemistry, 1949