Skip to main content
Have a personal or library account? Click to login
Spectral-Luminescent Properties of Rapeseed Oil Obtained from Seeds Purified with an Electrostatic Field Cover

Spectral-Luminescent Properties of Rapeseed Oil Obtained from Seeds Purified with an Electrostatic Field

Open Access
|Aug 2026

References

  1. Baltazar, P., Hernandez-Sanches, N., Diezma, B., & Lleo, L. (2020). Development of rapid extra virgin olive oil quality assessment procedures based on spectroscopic technologies. Agronomy, 10, 41–56 https://doi.org/10.3390/agronomy10010041
  2. Berto, B. M., Garcia, R. K. A., Fernandes, G. D., Barrera-Arellano, D., & Pereira, G. G. (2020). Linseed oil: Characterization and study of its oxidative degradation. Grasas y Aceites, 71(1), e337-e337. https://doi.org/10.3989/gya.1059182
  3. Cert, A., Moreda, W., & Perez-Camino, M. (2000). Chromatographic analysis of minor constituents in vegetable oils. Journal of Chromatography A, 881, 131–148. https://doi.org/10.1016/S0021-9673(00)00389-7
  4. Corradini, M., Wang, Y., Lavinia, L., & Le, A. (2016). Identifying and selecting edible luminescent probes as sensors of food quality. AIMS Biophysics, 3(2), 319–339. https://doi.org/10.3934/biophy.2016.2.319
  5. Dupuy, N., Le Dréau, Y., Ollivier, D., Artaud, J., Pinatel, C., & Kister, J. (2005). Origin of French virgin olive oil registered designation of origins predicted by chemometric analysis of synchronous excitation− emission fluorescence spectra. Journal of agricultural and food chemistry, 53(24), 9361-9368. https://doi.org/10.1021/jf051716m
  6. Escuderos, M., Sayago, A., Morales, M., & Aparicio, R. (2009). Evaluation of α-tocopherol in virgin olive oil by a luminescent method. Grasas Y Aceites, 60(4), 336–342. https://doi.org/10.3989/gya.108308
  7. Khosroshahi, M. (2018). Effect of temperature on optical properties of vegetable oils. Optics and Photonics Journal, 8, 247–263. https://doi.org/10.4236/opj.2018.87021
  8. Kovalyshyn, S. (2016). Study of structural changes in the cells of the stimulated seed sprouts. International Agrophysics, 30(4), 545–550. https://doi.org/10.1515/intag-2016-0012
  9. Kovalyshyn, S., Myagkota, S. V., Ptashnyk, V., Kharchenko, S., Tomporowski, A., & Kiełbasa, P. (2022). Investigation of the effect of pre-sowing electrical stimulation of winter rapeseed on its spectral-luminescent properties. Przegląd Elektrotechniczny, 1, 79–83. https://doi.org/10.15199/48.2022.01.13
  10. Kovalyshyn, S., Ptashnyk, V., Nester, B., Kielbasa, P., Ovcharuk, O., Kovalyshyn, O., Tkach, O., Biliuk, M. & Shubenko, V. (2024). Optimization of the Modes of Pre-Sowing Electrical Stimulation of Winter Rape Seeds Based on the Study of the Intensity of Single Photon Emission by Them. Agricultural Engineering, 28(1), 9-21. https://doi.org/10.2478/agriceng-2024-0002
  11. Krasnikov, V., Timoshkin, E., & Titkova, A. (1987). Spectral Luminescent Analysis of Food Products. Moscow, Russia: Agroizdat, 342.
  12. Kyriakidis, N., & Skarcalis P. (2000). Fluorescence spectra measurement of olive oil and other vegetable oils. Journal of AOAC INTERNATIONAL, 83(6), 1435–1439. https://doi.org/10.1093/jaoac/83.6.1435
  13. Lobo-Prieto, A., Tena, N., Aparicio-Ruiz, R., García-González, D. L., & Sikorska, E. (2020). Monitoring virgin olive oil shelf-life by fluorescence spectroscopy and sensory characteristics: A multidimensional study carried out under simulated market conditions. Foods, 9, 1846–1866. https://doi.org/10.3390/foods9121846
  14. Mishra, P., Lleó, L., Cuadrado, T., Ruiz-Altisent, M., & Hernández-Sánchez, N. (2018). Oxidation changes in commercial extra virgin olive oils with fluorescence spectroscopy-based prototype. European Food Research and Technology, 244, 565–575. https://doi.org/10.1007/s00217-017-2984-1
  15. Morin, J.-F., & Lees, M. (2018). Food Integrity Handbook: A Guide to Food Authenticity Issues and Analytical Solutions. Eurofins Analytics France, Nantes, France. https://doi.org/10.32741/fihb
  16. Myagkota, S., Shevchuk, R., Sukach, O., Pushak, A., Malyi, T., & Fulmes, M. (2022). Spectral and luminescent characteristics of linseed oils of different prehistory. Fluorescence, 32, 1991–1998. https://doi.org/10.1007/s10895-022-02993-4
  17. Ogborn, M., Nitschmann, E., Bankovic-Calic, N., Weiler, H., & Aukema, H. (2002). Dietary flax oil reduces renal injury, oxidised LDL content, and tissue n−6/n−3 FA ratio in experimental polycystic kidney disease. Lipids, 37, 1059–1065. https://doi.org/10.1007/s11745-002-1001-4
  18. Paschos, G., Magkos, F., Panagiotakos, D., Votteas, V., & Zampelas, A. (2007). Dietary supplementation with flaxseed oil lowers blood pressure in dyslipidaemic patients. European Journal of Clinical Nutrition, 61, 1201–1206. https://doi.org/10.1038/sj.ejcn.1602631
  19. Rolewicz, A., Krajewska, M. & Starek-Wójcicka, A. (2025). Opportunities for the Use of Post-Production Raw Materials of the Fruit and Vegetable Industry in the Agri-Food Sector: A Review. Agricultural Engineering, 29(1), 135-155. https://doi.org/10.2478/agriceng-2025-0009
  20. Saleem, M., & Ahmad, N. (2018). Characterization of canola oil extracted by different methods using fluorescence spectroscopy. PLoS One, 13(12), e0208640. https://doi.org/10.1371/journal.pone.0208640
  21. Sikorska, E., Khmelinskii, I., & Sikorski, M. (2012). Analysis of olive oil by fluorescence spectroscopy: Methods and applications. Olive Oil: Constituents, Quality, Health Properties and Bioconversions. D. Boskou, Ed. London, UK: IntechOpen, 63–88. https://doi.org/10.5772/30676
  22. Sikorska, E., Wójcicki, K., Kozak, W., Gliszczyńska-Świgło, A., Khmelinskii, I., Górecki, T., Caponio, F., Paradiso, V.M., Summo, C., Pasqualone, A. (2019). Front-face fluorescence spectroscopy and chemometrics for quality control of cold-pressed rapeseed oil during storage. Foods, 8, 665–680. https://doi.org/10.3390/foods8120665
  23. Silva, V. D., Conceição, J. N., Oliveira, I. P., Lescano, C. H., Muzzi, R. M., Filho, O. P., Edemilson, C. Casagrande, G.A., Caires, A. R. (2015). Oxidative stability of baru (Dipteryx alata Vogel) oil monitored by fluorescence and absorption spectroscopy. Journal of Spectroscopy, 2015(1), 803705. https://doi.org/10.1155/2015/803705
  24. Szukay, B., Stachura, W., Saletnik, Ł., Budzyński, J., Szymańska, J., & Fisz, J. (2019). Changes in the fluorescence excitation and emissions spectra of heated and frying rapeseed oil and sunflower oil. Biotechnology and Food Science, 83(1), 49–56. https://doi.org/10.34658/bfs.2019.83.1.49-56
  25. Yamaguchi, T., Devassy, J., & Gabbs M. (2015). Dietary flax oil rich in α-linolenic acid reduces renal disease and oxylipin abnormalities, including formation of docosahexaenoic acid-derived oxylipins in the СВd-pcy/pcy mouse model of nephronophthisis. Prostaglandins, Leukotrienes and Essential Fatty Acids, 94, 83–89. https://doi.org/10.1016/j.plefa.2014.11.009
  26. Zandomeneghi, M., Carbonaro, L., & Caffarata, C. (2005). Fluorescence of vegetable oils: Olive oils. Journal of Agricultural and Food Chemistry, 53(3), 759–766. https://doi.org/10.1021/jf048742p
DOI: https://doi.org/10.2478/agriceng-2026-0013 | Journal eISSN: 2449-5999 | Journal ISSN: 2083-1587
Language: English
Page range: 198 - 208
Submitted on: Jan 1, 2026
Accepted on: Aug 1, 2026
Published on: Aug 24, 2026
In partnership with: Paradigm Publishing Services

© 2026 Stepan Kovalyshyn, Stepan Myagkota, Oleg Kushnir, Oleg Kovalyshyn, Vadym Ptashnyk, Andriy Pushak, Oksana Vasylenko, Rafał Jończy, Taras Hutsol, published by Polish Society of Agricultural Engineering
This work is licensed under the Creative Commons Attribution 4.0 License.