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Quantitative assessment of specific defects in roasted ground coffee via infrared-photoacoustic spectroscopy
Rafael Carlos Eloy Dias1, Patrícia Valderrama2, Paulo Henrique Março2
1Zurich University of Applied Sciences (ZHAW), Institute of Chemistry and Biotechnology, Coffee Excellence Center, Einsiedlerstrasse 31, CH - 8820 Wädenswil, Switzerland.
Abstract:
Chemical analyses and sensory evaluation are the most applied methods for quality control of roasted and ground coffee (RG). However, faster alternatives would be highly valuable. Here, we applied infrared-photoacoustic spectroscopy (FTIR-PAS) on RG powder. Mixtures of specific defective beans were blended with healthy (defect-free) Coffea arabica and Coffea canephora bases in specific ratios, forming different classes of blends. Principal Component Analysis allowed predicting the amount/fraction and nature of the defects in blends while partial Least Squares Discriminant Analysis revealed similarities between blends (=samples). A successful predictive model was obtained using six classes of blends. The model could classify 100% of the samples into four classes. The specificities were higher than 0.9. Application of FTIR-PAS on RG coffee to characterize and classify blends has shown to be an accurate, easy, quick and "green" alternative to current methods.
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