ПРИМЕНЕНИЕ ОЗОНОВЫХ ТЕХНОЛОГИЙ В СЕЛЬСКОМ ХОЗЯЙСТВЕ: СОВРЕМЕННОЕ СОСТОЯНИЕ, ЭФФЕКТИВНОСТЬ И ПЕРСПЕКТИВЫ РАЗВИТИЯ
Том 6 № 7 (2026): Евразийский журнал академических исследований 139-157
Аннотация
В статье на основе библиометрического анализа и обзора научной литературы рассмотрены современное состояние, эффективность и перспективы развития озоновых технологий в сельском хозяйстве. Проанализированы динамика научных публикаций по данной тематике за 2016–2025 гг., взаимосвязь основных ключевых слов, научная активность ведущих авторов, а также географическое распределение исследований по странам. Результаты анализа показали, что применение озоновых технологий развивается в тесной связи с обработкой семенного материала, хранением зерна и сельскохозяйственной продукции, послеуборочной обработкой, микробиологическим обеззараживанием, контролем микотоксинов и вредителей, а также обеспечением качества и безопасности продукции.
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Библиографические ссылки
Botondi R., Barone M., Grasso C. A review into the effectiveness of ozone technology for improving the safety and preserving the quality of fresh-cut fruits and vegetables // Foods. – 2021. – Vol. 10, No. 4. – Art. 748. – DOI: 10.3390/foods10040748.
Sivaranjani S., Prasath V. A., Pandiselvam R., Kothakota A., Khaneghah A. M. Recent advances in applications of ozone in the cereal industry // LWT. – 2021. – Vol. 146. – Art. 111412. – DOI: 10.1016/j.lwt.2021.111412.
Çetinkaya N., Pazarlar S., Paylan İ. C. Ozone treatment inactivates common bacteria and fungi associated with selected crop seeds and ornamental bulbs // Saudi Journal of Biological Sciences. – 2022. – Vol. 29, No. 12. – Art. 103480. – DOI: 10.1016/j.sjbs.2022.103480.
Sanchez D. R., Jespersen B. M., Rasmussen L. H., Andersen M. L. Ozone treatment of wheat reduces common bunt (Tilletia spp.) infection // Journal of Stored Products Research. – 2025. – Vol. 111. – Art. 102488. – DOI: 10.1016/j.jspr.2024.102488.
Dong X., Sun L., Maker G., Ren Y., Yu X. Ozone treatment increases the release of VOC from barley, which modifies seed germination // Journal of Agricultural and Food Chemistry. – 2022. – Vol. 70, No. 10. – P. 3127–3135. – DOI: 10.1021/acs.jafc.1c06812.
Dong X., Sun L., Agarwal M., Maker G., Han Y., Yu X., Ren Y. The effect of ozone treatment on metabolite profile of germinating barley // Foods. – 2022. – Vol. 11, No. 9. – Art. 1211. – DOI: 10.3390/foods11091211.
Mohammad Z., Kalbasi-Ashtari A., Riskowski G. L., Castillo A. Reduction of Salmonella and Shiga toxin-producing Escherichia coli on alfalfa seeds and sprouts using an ozone generating system // International Journal of Food Microbiology. – 2019. – Vol. 289. – P. 57–63. – DOI: 10.1016/j.ijfoodmicro.2018.08.023.
Mohammad Z., Kalbasi-Ashtari A., Riskowski G., Juneja V. K., Castillo A. Inactivation of Salmonella and Shiga toxin-producing Escherichia coli from the surface of alfalfa seeds and sprouts by combined antimicrobial treatments using ozone and electrolyzed water // Food Research International. – 2020. – Vol. 136. – Art. 109488. – DOI: 10.1016/j.foodres.2020.109488.
Ohashi-Kaneko K., Yoshii M., Isobe T., Park J.-S., Kurata K., Fujiwara K. Nutrient solution prepared with ozonated water does not damage early growth of hydroponically grown tomatoes // Ozone: Science & Engineering. – 2009. – Vol. 31, No. 1. – P. 21–27. – DOI: 10.1080/01919510802587523.
Kells S. A., Mason L. J., Maier D. E., Woloshuk C. P. Efficacy and fumigation characteristics of ozone in stored maize // Journal of Stored Products Research. – 2001. – Vol. 37, No. 4. – P. 371–382. – DOI: 10.1016/S0022-474X(00)00040-0.
Mendez F., Maier D. E., Mason L. J., Woloshuk C. P. Penetration of ozone into columns of stored grains and effects on chemical composition and processing performance // Journal of Stored Products Research. – 2003. – Vol. 39, No. 1. – P. 33–44. – DOI: 10.1016/S0022-474X(02)00015-2.
Bonjour E. L., Opit G. P., Hardin J., Jones C. L., Payton M. E., Beeby R. L. Efficacy of ozone fumigation against the major grain pests in stored wheat // Journal of Economic Entomology. – 2011. – Vol. 104, No. 1. – P. 308–316. – DOI: 10.1603/EC10200.
McDonough M. X., Campabadal C. A., Mason L. J., Maier D. E., Denvir A., Woloshuk C. P. Ozone application in a modified screw conveyor to treat grain for insect pests, fungal contaminants, and mycotoxins // Journal of Stored Products Research. – 2011. – Vol. 47, No. 3. – P. 249–254. – DOI: 10.1016/j.jspr.2011.04.001.
Dong X., Agarwal M., Xiao Y., Ren Y., Maker G., Yu X. Ozone efficiency on two coleopteran insect pests and its effect on quality and germination of barley // Insects. – 2022. – Vol. 13, No. 4. – Art. 318. – DOI: 10.3390/insects13040318.
Savi G. D., Piacentini K. C., Scussel V. M. Ozone treatment efficiency in Aspergillus and Penicillium growth inhibition and mycotoxin degradation of stored wheat grains (Triticum aestivum L.) // Journal of Food Processing and Preservation. – 2015. – Vol. 39, No. 6. – P. 940–948. – DOI: 10.1111/jfpp.12307.
Trombete F. M., Porto Y. D., Freitas-Silva O., Pereira R. V., Direito G. M., Saldanha T., Fraga M. E. Efficacy of ozone treatment on mycotoxins and fungal reduction in artificially contaminated soft wheat grains // Journal of Food Processing and Preservation. – 2017. – Vol. 41, No. 3. – Art. e12927. – DOI: 10.1111/jfpp.12927.
Wang L., Shao H., Luo X., Wang R., Li Y., Li Y., Luo Y., Chen Z. Effect of ozone treatment on deoxynivalenol and wheat quality // PLoS ONE. – 2016. – Vol. 11, No. 1. – Art. e0147613. – DOI: 10.1371/journal.pone.0147613.
Pérez A. G., Sanz C., Ríos J. J., Olías R., Olías J. M. Effects of ozone treatment on postharvest strawberry quality // Journal of Agricultural and Food Chemistry. – 1999. – Vol. 47, No. 4. – P. 1652–1656. – DOI: 10.1021/jf980829l.
Tzortzakis N., Borland A., Singleton I., Barnes J. Impact of atmospheric ozone-enrichment on quality-related attributes of tomato fruit // Postharvest Biology and Technology. – 2007. – Vol. 45, No. 3. – P. 317–325. – DOI: 10.1016/j.postharvbio.2007.03.004.
Rodoni L., Casadei N., Concellón A., Chaves A. R., Vicente A. R. Effect of short-term ozone treatments on tomato (Solanum lycopersicum L.) fruit quality and cell wall degradation // Journal of Agricultural and Food Chemistry. – 2010. – Vol. 58, No. 1. – P. 594–599. – DOI: 10.1021/jf9029145.
Minas I. S., Karaoglanidis G. S., Manganaris G. A., Vasilakakis M. Effect of ozone application during cold storage of kiwifruit on the development of stem-end rot caused by Botrytis cinerea // Postharvest Biology and Technology. – 2010. – Vol. 58, No. 3. – P. 203–210. – DOI: 10.1016/j.postharvbio.2010.07.002.
Gabler F. M., Smilanick J. L., Mansour M. F., Karaca H. Influence of fumigation with high concentrations of ozone gas on postharvest gray mold and fungicide residues on table grapes // Postharvest Biology and Technology. – 2010. – Vol. 55, No. 2. – P. 85–90. – DOI: 10.1016/j.postharvbio.2009.09.004.
Ikeura H., Kobayashi F., Tamaki M. Removal of residual pesticides in vegetables using ozone microbubbles // Journal of Hazardous Materials. – 2011. – Vol. 186, No. 1. – P. 956–959. – DOI: 10.1016/j.jhazmat.2010.11.094.
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