Quantification of Ash and Moisture in Wheat Flour by Raman Spectroscopy
Количественное определение зольности и влажности пшеничной муки методом рамановской спектроскопии
2020-03-03
SCID: 54.1/cy4zfn2v
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Raman spectroscopyash and moisture quantificationelemental analysispartial least squares regressionwheat flour
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Abstract (AI)
Wheat flour is widely used on an industrial scale in baked goods, pasta, food concentrates, and confectionaries. Ash content and moisture can serve as important indicators of the wheat flour's quality and use, but the routinely applied assessment methods are laborious. Partial least squares regression models, obtained using Raman spectra of flour samples and the results of reference gravimetric analysis, allow for fast and reliable determination of ash and moisture in wheat flour, with relative standard errors of prediction of the order of 2%. Analogous calibration models that enable quantification of carbon, oxygen, sulfur, and nitrogen, and hence protein, in the analyzed flours, with relative standard errors of prediction equal to 0.1, 0.3, 3.3, and 1.4%, respectively, were built combining the results of elemental analysis and Raman spectra.
Key Findings
1
Ash and moisture prediction models achieved relative standard errors of prediction of approximately 2%.
2
Calibration models combining Raman spectra with elemental analysis quantified carbon, oxygen, sulfur, and nitrogen in wheat flour.
3
Raman spectroscopy combined with partial least squares regression enables rapid and reliable quantification of ash and moisture in wheat flour.
4
Relative standard errors of prediction were 0.1% for carbon, 0.3% for oxygen, 3.3% for sulfur, and 1.4% for nitrogen.
5
The Raman-based approach offers a faster alternative to laborious conventional gravimetric assessment methods for flour quality indicators.
Research Object
wheat flour samples
Research Subject
quantification of ash, moisture, and elemental composition including protein content using Raman spectra
Publication Details
Publication Date
2020-03-03
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