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Accounting for interelement interferences in atomic emission spectroscopy : A nonlinear theory. / Popova, Anna N.; Sukhomlinov, Vladimir S.; Mustafaev, Aleksandr S.

In: Applied Sciences (Switzerland), Vol. 11, No. 23, 11237, 01.12.2021.

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Popova, Anna N. ; Sukhomlinov, Vladimir S. ; Mustafaev, Aleksandr S. / Accounting for interelement interferences in atomic emission spectroscopy : A nonlinear theory. In: Applied Sciences (Switzerland). 2021 ; Vol. 11, No. 23.

BibTeX

@article{d5e6ebe90fb14f5e93dbc09ea9bddf11,
title = "Accounting for interelement interferences in atomic emission spectroscopy: A nonlinear theory",
abstract = "The article describes a nonlinear theory of how the presence of third elements affects the results of analyzing the elemental composition of substances by means of atomic emission spectros-copy. The theory is based on the assumption that there is an arbitrary relationship between the intensity of the analytical line of the analyte and the concentration of impurities and alloying elements. The theory has been tested on a simulation problem using commercially available equipment (the SPAS-05 spark spectrometer). By comparing the proposed algorithm with the traditional one, which assumes that there is a linear relationship between the intensity of the analytical line of the analyte and the intensities of the spectral lines (or concentrations) in the substance, it was revealed that there is a severalfold decrease in the deviations of nominal impurity concentrations from the measured ones. The results of this study allow for reducing the number of analytical procedures used in analyzing materials that have different compositions and the same matrix element. For instance, it be-comes possible to determine the composition of iron-based alloys (low-alloy and carbon steels; high-speed steels; high-alloy, and heat-resistant steels) using one calibration curve within the framework of a universal analytical method.",
keywords = "Calibration, Charge-coupled image sensors, Impurities, Metrology, Plasma devices, Spectral analysis, Spectroscopy",
author = "Popova, {Anna N.} and Sukhomlinov, {Vladimir S.} and Mustafaev, {Aleksandr S.}",
note = "Publisher Copyright: {\textcopyright} 2021 by the authors. Licensee MDPI, Basel, Switzerland.",
year = "2021",
month = dec,
day = "1",
doi = "10.3390/app112311237",
language = "English",
volume = "11",
journal = "Applied Sciences (Switzerland)",
issn = "2076-3417",
publisher = "MDPI AG",
number = "23",

}

RIS

TY - JOUR

T1 - Accounting for interelement interferences in atomic emission spectroscopy

T2 - A nonlinear theory

AU - Popova, Anna N.

AU - Sukhomlinov, Vladimir S.

AU - Mustafaev, Aleksandr S.

N1 - Publisher Copyright: © 2021 by the authors. Licensee MDPI, Basel, Switzerland.

PY - 2021/12/1

Y1 - 2021/12/1

N2 - The article describes a nonlinear theory of how the presence of third elements affects the results of analyzing the elemental composition of substances by means of atomic emission spectros-copy. The theory is based on the assumption that there is an arbitrary relationship between the intensity of the analytical line of the analyte and the concentration of impurities and alloying elements. The theory has been tested on a simulation problem using commercially available equipment (the SPAS-05 spark spectrometer). By comparing the proposed algorithm with the traditional one, which assumes that there is a linear relationship between the intensity of the analytical line of the analyte and the intensities of the spectral lines (or concentrations) in the substance, it was revealed that there is a severalfold decrease in the deviations of nominal impurity concentrations from the measured ones. The results of this study allow for reducing the number of analytical procedures used in analyzing materials that have different compositions and the same matrix element. For instance, it be-comes possible to determine the composition of iron-based alloys (low-alloy and carbon steels; high-speed steels; high-alloy, and heat-resistant steels) using one calibration curve within the framework of a universal analytical method.

AB - The article describes a nonlinear theory of how the presence of third elements affects the results of analyzing the elemental composition of substances by means of atomic emission spectros-copy. The theory is based on the assumption that there is an arbitrary relationship between the intensity of the analytical line of the analyte and the concentration of impurities and alloying elements. The theory has been tested on a simulation problem using commercially available equipment (the SPAS-05 spark spectrometer). By comparing the proposed algorithm with the traditional one, which assumes that there is a linear relationship between the intensity of the analytical line of the analyte and the intensities of the spectral lines (or concentrations) in the substance, it was revealed that there is a severalfold decrease in the deviations of nominal impurity concentrations from the measured ones. The results of this study allow for reducing the number of analytical procedures used in analyzing materials that have different compositions and the same matrix element. For instance, it be-comes possible to determine the composition of iron-based alloys (low-alloy and carbon steels; high-speed steels; high-alloy, and heat-resistant steels) using one calibration curve within the framework of a universal analytical method.

KW - Calibration

KW - Charge-coupled image sensors

KW - Impurities

KW - Metrology

KW - Plasma devices

KW - Spectral analysis

KW - Spectroscopy

UR - http://www.scopus.com/inward/record.url?scp=85119969934&partnerID=8YFLogxK

U2 - 10.3390/app112311237

DO - 10.3390/app112311237

M3 - Article

AN - SCOPUS:85119969934

VL - 11

JO - Applied Sciences (Switzerland)

JF - Applied Sciences (Switzerland)

SN - 2076-3417

IS - 23

M1 - 11237

ER -

ID: 89155152