Identification and Analysis of Meat Species Using Laser Induced Breakdown Spectroscopy (LIBS): A Review
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OECD, Food, and A.O.o.t.U. Nations, OECD-FAO Agricultural Outlook 2023-2032. 2023.
Amalia, L. and D.A. Trimelati, Analisis Kehalalan Daging Sapi Dengan Metode Pork Detection Kit (Pdk) dan Analisis Tingkat Kepedulian Konsumen dalam Mengonsumsi Daging Sapi Halal di Kota Bekasi. Jurnal Agroindustri Halal, 2021. 7(2): p. 155-165.
Song, Q., et al., Monitoring of sausage products sold in Sichuan Province, China: A first comprehensive report on meat species’ authenticity determination. Scientific Reports, 2019. 9(1): p. 1-9.
Frank, D., Y. Oytam, and J. Hughes, Sensory Perceptions and New Consumer Attitudes to Meat, in New Aspects of Meat Quality. 2017. p. 667-698.
Chiş, L.-M. and D.C. Vodnar, Detection of the Species of Origin for Pork, Chicken and Beef in Meat Food Products by Real-Time PCR. Safety, 2019. 5(4).
Sin, K.Y., M.C. Sin, and Z. Jin, Distinguished identification of halal and non-halal animal-fat gelatin by using microwave dielectric sensing system. Cogent Engineering, 2019. 6(1).
Salihah, N.T., et al., Trends and advances in food analysis by real-time polymerase chain reaction. Journal of Food Science and Technology, 2016. 53: p. 2196-2209.
Moniri, A., et al., Amplification curve analysis: data-driven multiplexing using real-time digital PCR. Analytical Chemistry, 2020. 92(19): p. 13134-13143.
Meng, Z., Z. Wu, and J. Gray, Microwave sensor technologies for food evaluation and analysis: Methods, challenges and solutions. Transactions of the Institute of Measurement and Control, 2018. 40(12): p. 3433-3448.
Wang, J., et al., Optimization of Electronic Nose Sensor Array for Tea Aroma Detecting Based on Correlation Coefficient and Cluster Analysis. Chemosensors, 2021. 9(9).
Sarno, R., et al., Detecting Pork Adulteration in Beef for Halal Authentication Using an Optimized Electronic Nose System. IEEE Access, 2020. 8: p. 221700-221711.
Zhou, S., H. Kuang, and L. Liu, Development of an ic-ELISA and colloidal gold strip for the detection of the beta-blocker carazolol. Food and Agricultural Immunology, 2020. 31(1): p. 217-230.
Chen, X., et al., Immunoassay of cooked wild rat meat by ELISA with a highly specific antibody targeting rat heat-resistant proteins. Food and Agricultural Immunology, 2020. 31(1): p. 533-544.
Valand, R., et al., A review of Fourier Transform Infrared (FTIR) spectroscopy used in food adulteration and authenticity investigations. Food Additives & Contaminants: Part A, 2020. 37(1): p. 19-38.
Candoğan, K., E.G. Altuntas, and N. İğci, Authentication and quality assessment of meat products by fourier-transform infrared (FTIR) spectroscopy. Food Engineering Reviews, 2021. 13: p. 66-91.
Siddiqui, M.A., et al., Multivariate Analysis Coupled with M-SVM Classification for Lard Adulteration Detection in Meat Mixtures of Beef, Lamb, and Chicken Using FTIR Spectroscopy. Foods, 2021. 10(10).
Robert, C., et al., Rapid discrimination of intact beef, venison and lamb meat using Raman spectroscopy. Food Chem, 2021. 343: p. 128441.
Bilge, G., et al., Identification of meat species by using laser-induced breakdown spectroscopy. Meat Sci, 2016. 119: p. 118-22.
Velioglu, H.M., et al., Identification of offal adulteration in beef by laser induced breakdown spectroscopy (LIBS). Meat Sci, 2018. 138: p. 28-33.
Guo, L., et al., Meat species identification accuracy improvement using sample set portioning based on joint x–y distance and laser-induced breakdown spectroscopy. Applied Optics, 2021. 60(20): p. 5826-5831.
Sezer, B., et al., Protein based evaluation of meat species by using laser induced breakdown spectroscopy. Meat science, 2021. 172: p. 108361.
Sezer, B., et al., Identification of meat species in processed meat products by using protein based laser induced breakdown spectroscopy assay. Food Chem, 2022. 372: p. 131245.
Sun, H., et al., Identification of meat species by combined laser-induced breakdown and Raman spectroscopies. Spectrochimica Acta Part B: Atomic Spectroscopy, 2022. 194.
Wermer, L. and S.-k. Im, Plasma and flow induced by single-and dual-pulse laser-induced breakdown in stationary air. Plasma Sources Science and Technology, 2019. 28(6): p. 065004.
Singh, J.P. and S.N. Thakur, Laser-induced breakdown spectroscopy. 2020: Elsevier.
Rai, V. and S.N. Thakur, Physics and dynamics of plasma in laser-induced breakdown spectroscopy, in Laser-Induced Breakdown Spectroscopy. 2020, Elsevier. p. 71-106.
Elhamdaoui, I., et al., Measuring the concentration of gold in ore samples by laser-induced breakdown spectroscopy and comparison with the gravimetry/atomic absorption techniques. Spectrochimica Acta Part B: Atomic Spectroscopy, 2021. 183: p. 106256.
Cozzolino, D., An overview of the use of infrared spectroscopy and chemometrics in authenticity and traceability of cereals. Food Research International, 2014. 60: p. 262-265.
Rai, V., F. Yueh, and J. Singh, Laser-induced breakdown spectroscopy of liquid samples. Laser Induced Breakdown Spectroscopy, 2007: p. 223-254.
Chu, Y.W., et al., Accuracy and stability improvement for meat species identification using multiplicative scatter correction and laser-induced breakdown spectroscopy. Optics Express, 2018. 26(8): p. 10119-10127.
Sezer, B., G. Bilge, and I.H. Boyaci, Capabilities and limitations of LIBS in food analysis. TrAC Trends in Analytical Chemistry, 2017. 97: p. 345-353.
DOI: https://doi.org/10.24815/jocarbazon.v2i1.35080
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