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Article

In Situ Monitoring of Sugar Content in Breakfast Cereals Using a Novel FT-NIR Spectrometer

by
Didem Peren Aykas
1,2,
Christopher Ball
3,
Ahmed Menevseoglu
4 and
Luis E. Rodriguez-Saona
1,*
1
Department of Food Science and Technology, The Ohio State University, 110 Parker Food Science and Technology Building, 2015 Fyffe Road, Columbus, OH 43210, USA
2
Department of Food Engineering, Faculty of Engineering, Adnan Menderes University, Aydin 09100, Turkey
3
ElectroScience Laboratory, The Ohio State University, 1330 Kinnear Road, Columbus, OH 43212, USA
4
Department of Food Engineering, Faculty of Engineering and Natural Sciences, Gumushane University, Gumushane 29100, Turkey
*
Author to whom correspondence should be addressed.
Appl. Sci. 2020, 10(24), 8774; https://doi.org/10.3390/app10248774
Submission received: 20 November 2020 / Revised: 2 December 2020 / Accepted: 4 December 2020 / Published: 8 December 2020
(This article belongs to the Special Issue Application of Spectroscopy in Food Analysis: Volume II)

Abstract

This research demonstrates simultaneous predictions of individual and total sugars in breakfast cereals using a novel, handheld near-infrared (NIR) spectroscopic sensor. This miniaturized, battery-operated unit based on Fourier Transform (FT)-NIR was used to collect spectra from both ground and intact breakfast cereal samples, followed by real-time wireless data transfer to a commercial tablet for chemometric processing. A total of 164 breakfast cereal samples (60 store-bought and 104 provided by a snack food company) were tested. Reference analysis for the individual (sucrose, glucose, and fructose) and total sugar contents used high-performance liquid chromatography (HPLC). Chemometric prediction models were generated using partial least square regression (PLSR) by combining the HPLC reference analysis data and FT-NIR spectra, and associated calibration models were externally validated through an independent data set. These multivariate models showed excellent correlation (Rpre ≥ 0.93) and low standard error of prediction (SEP ≤ 2.4 g/100 g) between the predicted and the measured sugar values. Analysis results from the FT-NIR data, confirmed by the reference techniques, showed that eight store-bought cereal samples out of 60 (13%) were not compliant with the total sugar content declaration. The results suggest that the FT-NIR prototype can provide reliable analysis for the snack food manufacturers for on-site analysis.
Keywords: FT-NIR; PLSR; sugar content; nutrition facts label; breakfast cereal; handheld sensor FT-NIR; PLSR; sugar content; nutrition facts label; breakfast cereal; handheld sensor

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MDPI and ACS Style

Aykas, D.P.; Ball, C.; Menevseoglu, A.; Rodriguez-Saona, L.E. In Situ Monitoring of Sugar Content in Breakfast Cereals Using a Novel FT-NIR Spectrometer. Appl. Sci. 2020, 10, 8774. https://doi.org/10.3390/app10248774

AMA Style

Aykas DP, Ball C, Menevseoglu A, Rodriguez-Saona LE. In Situ Monitoring of Sugar Content in Breakfast Cereals Using a Novel FT-NIR Spectrometer. Applied Sciences. 2020; 10(24):8774. https://doi.org/10.3390/app10248774

Chicago/Turabian Style

Aykas, Didem Peren, Christopher Ball, Ahmed Menevseoglu, and Luis E. Rodriguez-Saona. 2020. "In Situ Monitoring of Sugar Content in Breakfast Cereals Using a Novel FT-NIR Spectrometer" Applied Sciences 10, no. 24: 8774. https://doi.org/10.3390/app10248774

APA Style

Aykas, D. P., Ball, C., Menevseoglu, A., & Rodriguez-Saona, L. E. (2020). In Situ Monitoring of Sugar Content in Breakfast Cereals Using a Novel FT-NIR Spectrometer. Applied Sciences, 10(24), 8774. https://doi.org/10.3390/app10248774

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