References
- Artyszak A., Gozdowski D., 2021. Influence of various forms of foliar application on root yield and technological quality of sugar beet. Agriculture, 11, 693, doi: 10.3390/agriculture11080693.
- Artyszak A., Gozdowski D., Jonczak J., Pągowski K., Popielec R., Ahmad Z., 2025. Yield and quality of maize grain in response to soil fertilization with silicon, calcium, magnesium, and manganese and the foliar application of silicon and calcium: Preliminary Results. Agronomy, 15, 837, doi: 10.3390/agronomy15040837.
- Artyszak A., Klarzyńska E., Litwińczuk-Bis M., Siuda A., 2019. Profitability of sugar beet foliar nutrition with silicon. Annals of the Polish Association of Agricultural and Agribusiness Economists, XXI(1): 7–13, doi org/10.5604/01.3001.0013.0539.
- Artyszak A., Kucińska K., 2016. Silicon nutrition and crop improvement: recent advances and future perspective. In: Silicon in plants: advances and future perspective; ed. Tripathi D.K., Singh V.P., Ahmad P., Chauhan D.K., Prasad D.K.; CRC Press, Taylor & Francis Group Boca Raton, pp. 297–320.
- Artyszak A., Popielec R., 2022. Ocena rynkowa stosowania dolistnego produktów z krzemem. Zagadnienia Doradztwa Rolniczego, 3: 22–32.
- Ayyaz A., Fang R., Ma J., Hannan F., Huang Q., Athar H. R., Sun Y., Javed M., Ali S., Zhou W., Farooq M.A., 2022. Calcium nanoparticles (Ca-NPs) improve drought stress tolerance in Brassica napus by modulating the photosystem II, nutrient acquisition and antioxidant performance. NanoImpact, 28, doi: 10.1016/j.impact.2022.100423.
- Căbăroiu G., Rujescu C.I., Sala F., 2018. Model of productivity elements variation in maize under the influence of silicon treatment. Lucrări Științifice Management Agricol, 20: 26–32.
- Ciecierski W., Kardasz H., 2014. Impact of silicon based fertilizer Optysil on abiotic stress reduction and yield improvement in field crops. In: 6th International Conference on Silicon in Agriculture, Stockholm, Sweden, August 26–30, 2014, pp. 54–55.
- Feng Y., Hu Y., Fang P., Zuo X., Wang J., Li J., Qian W., Mei J., 2021. Silicon alleviates the disease severity of sclerotinia stem rot in rapeseed. Frontiers in Plant Sciences, 12: 721436, doi: 10.3389/fpls.2021.721436.
- Główny Urząd Statystyczny, 2025. Produkcja upraw rolnych i ogrodniczych w 2024 r./ Production of agricultural and horticultural crops in 2024. Warszawa:
https://stat.gov.pl/obszary-tematyczne/rolnictwo-lesnictwo/uprawy-rolne-i-ogrodnicze/produkcja-upraw-rolnych-i-ogrodniczych-w-2024-r-,9,23.html (accessed 25 June 2025). - Gugała M., Sikorska A., Zarzecka K., Kapela K., Mystkowska I., 2017. The effect of sowing method and biostimulators on autumn development and overwintering of winter rape. Acta Scientiarum Polonorum Agricultura, 16(3): 111–120.
- Hawkesford M., Horst W., Kichey T., Lambers H., Schjoerring J., Møller I.S., White P., 2012. Functions of Macronutrients. In: Marschner’s Mineral Nutrition of Higher Plants; ed. Marschner P.; Third Edition, Elsevier Ltd., pp. 135–189.
https://danepubliczne.imgw.pl/ (accessed 25 June 2025).https://www.edwin.gov.pl/dane-agrometeorologiczne (accessed 20 June 2025).https://www.fao.org/faostat/en/#data/QCL/visualize (accessed 25 June 2025).https://www.lgseeds.pl/rzepak-ozimy/odmiana/lg-antigua (accessed 20 June 2025).- IUSS Working Group WRB, 2022. World Reference Base for Soil Resources. International soil classification system for naming soils and creating legends for soil maps. 4th edition. International Union of Soil Sciences (IUSS), Vienna, Austria, 236 pp.
- Kardasz P., Szulc P., Górecki K., Ambroży-Deręgowska K., Wąsala R., 2024. Silicon as a predicator of sustainable nutrient management in maize cultivation (Zea mays L.). Sustainability, 16, 10677, doi: 10.3390/su162310677.
- Kowalska J., Tyburski J., Jakubowska M., Krzymińska J., 2020. Effect of different forms of silicon on growth of spring wheat cultivated in organic farming system. Silicon, 13: 211–217, doi: 10.1007/s12633-020-00414-4.
- Liang Y., Shen Z., 1994. Interaction of silicon and boron in oilseed rape plants. Journal of Plant Nutrition, 17(2-3): 415–425, doi: 10.1080/01904169409364736.
- Litwińczuk-Bis M., Siuda A., Artyszak A., 2019. The economic effects of foliar fertilization of sugar beet with marine calcite. Annals of the Polish Association of Agricultural and Agribusiness Economists, XXI(2): 188–195, doi: 10.5604/01.3001.0013.2073.
- Maniraho L., Mushimiyimana I., Twagirumukiza A., Kayonga C., Twagirayezu O., Mbarubukeye F., 2019. Effect of Herbagreen foliar fertilizer on growth and productivity of maize in the mid-altitude zone of Rwanda. Asian Journal of Research in Agriculture and Forestry, 4: 1–10, doi: 10.9734/ajraf/2019/v4i430070.
- Mastalerczuk G., Borawska-Jarmułowicz B., Sujkowska-Rybkowska M., Bederska-Błaszczyk M., Borucki W., Dąbrowski P., 2025. Silicon mitigates the adverse effects of drought on Lolium perenne physiological, morphometric and anatomical characters. PeerJ 13: e18944, doi: 10.7717/peerj.18944.
- Mehlich A., 1984. Mehlich 3 soil test extractant: A modification of Mehlich 2 extractant. Communications in Soil Science and Plant Analysis, 15(12): 1409–1416, doi: 10.1080/00103628409367568.
- Miroshnychenko M., Hladkikh Y., Revtye-Uvarova A., Siabryk O., Voitovych O., 2023. Beneficial effects of silicon fertilizers on indicators of seed germination, grain yield of barley and soybean and silage maize biomass. Journal of Agricultural Sciences Belgrade, 68: 43–57, doi: 10.2298/JAS2301043M.
- Moghadam M. S. K., Rad A. H. S., Khodabin G., Jalilian A., Bakhshandeh E., 2022. Application of silicon for improving some physiological characteristics, seed yield, and oil quality of rapeseed genotypes under late-season drought stress. Journal of Soil Science and Plant Nutrition 22: 2872–2890, doi: 10.1007/s42729-022-00852-6.
- Nasri M., Khalatbari M., 2010. Silicon foliar application on yield and yield components of rapeseed (Brassica napus L.) under different plant densities in Iran. Book of abstracts “World Food System — A Contribution from Europe” (ed. Tielkes E.), September 14–16, 2010, Zurich: 340 pp.
- Niewiadomska A., Sulewska H., Wolna-Maruwka A., Ratajczak K., Waraczewska Z., Budka A., 2020. The influence of biostimulants and foliar fertilizers on yield, plant features, and the level of soil biochemical activity in white lupine (Lupinus albus L.) cultivation. Agronomy, 10, 150, doi: 10.3390/agronomy10010150.
- PN-ISO 10390: 1997; Soil Quality – pH Determination. PKN: Warsaw, Poland.
- Prifti D., Maçi A., 2017. Effect of Herbagreen nano-particles on biochemical and technological parameters of cereals (wheat and maize). European Journal of Scientific Research, 13, 72, doi: 10.19044/esj.2017.v13n6p72.
- Research Procedure of the Regional Agrochemical Station in Warsaw No. PB 01 ed. 4, 15/10/2009.
- Rosiak E. (ed.), 2024. Rynek rzepaku. Stan i perspektywy. Nr 65, Analizy Rynkowe, IERiGŻ – PIB.
- Saja-Garbarz D., Godel-Jędrychowska K., Kurczyńska E., Kozieradzka-Kiszkurno M., Tuleja M., Gula E., Skubała K., Rys M., Urban K., Kwiatkowska M., Libik-Konieczny M., 2024a. The effect of silicon supplementation and drought stress on the deposition of callose and chemical components in the cell walls of the Brassica napus roots. BMC Plant Biology 24, 1249, doi: 10.1186/s12870-024-05967-9.
- Saja-Garbarz D., Libik-Konieczny M., Janowiak F., 2024b. Silicon improves root functioning and water management as well as alleviates oxidative stress in oilseed rape under drought conditions. Frontiers in Plant Sciences, 15: 1359747, doi: 10.3389/fpls.2024.1359747.
- Saja-Garbarz D., Libik-Konieczny M., Fellner M., Jurczyk B., Janowiak F., 2022. Silicon-induced alterations in the expression of aquaporins and antioxidant system activity in well-watered and drought-stressed oilseed rape. Plant Physiology and Biochemistry, 174: 73–86, doi: 10.1016/j.plaphy.2022.01.033.
- Saja-Garbarz D., Ostrowska A., Kaczanowska K., Janowiak F., 2021. Accumulation of silicon and changes in water balance under drought stress in Brassica napus var. napus L. Plants, 10, 280, doi: 10.3390/plants10020280.
- Sajedi N.A., Farahani H., Nikoogoftar M.A., 2023. The effect of foliar-applied silicon compounds on reducing seed shattering and improve seed and oil yield of canola (Brassica napus L.). Silicon, 15: 197–204, doi: 10.1007/s12633-022-01733-4.
- Semina S., Gavryshina I., Zheryakov E., Nikulina E., 2020. The formation of corn grain yield when using silicon-containing preparations. Scientific Papers Series A., Agronomy, 63: 509–513.
- Siuda A., Artyszak A., 2023. Opłacalność ekonomiczna produkcji buraka cukrowego w zależności od formy, dawki i terminów aplikacji dolistnej krzemu. In: Przemiany w rolnictwie w rolnictwie współczesne wyzwania ekonomiczne, środowiskowe i społeczne; ed.: Gołębiewska B., Grontkowska A.; Wyd. SGGW, Warszawa, pp. 191–200.
- Siuda A., Artyszak A., Gozdowski D., Ahmad Z., 2023. Effect of form of silicon and the timing of a single foliar application on sugar beet yield. Agriculture, 14, 86, doi: 10.3390/agriculture14010086.
- Shirani Rad A.H., Eyni-Nargeseh H., Shiranirad S., Heidarzadeh A., 2022. Effect of potassium silicate on seed yield and fatty acid composition of rapeseed (Brassica napus L.) genotypes under different irrigation regimes. Silicon, 14: 11927–11938, doi: 10.1007/s12633-022-01915-0.
- Skarżyńska A., Jabłoński K., 2013. Koszty jednostkowe i dochody wybranych produktów w 2011 roku – wyniki badań w systemie Agrokoszty. Zagadnienia Ekonomiki Rolnej, 335(2): 124–143.
- Stankowski S., Hury G., Sobolewska M., Jaroszewska A., Bashutska U., Gibczyńska M., 2021. Assessment of the effect of foliar silicone fertilizer on winter wheat cultivation. Ecological Engineering and Environmental Technology, 22: 75–80, doi: 10.12912/27197050/133382.
- Tobiasz-Salach R., Krochmal-Marczak B., Bobrecka-Jamro D., 2018. Ocena wpływu nawożenia dolistnego na plonowanie i skład chemiczny nasion gryki (Fagopyrum esculentum Moench). Fragmenta Agronomica, 35: 106–114, doi: 10.26374/fa.2018.35.10.
- Tobiasz-Salach R., Mazurek M., Jacek B., 2023. Physiological, biochemical, and epigenetic reaction of maize (Zea mays L.) to cultivation in conditions of varying soil salinity and foliar application of silicon. International Journal of Molecular Sciences, 24, 1141, doi: 10.3390/ijms24021141.
- Trawczyński C., 2018. The effect of foliar preparation with silicon on the yield and quality of potato tubers in compared to selected biostymulators. Fragmenta Agronomica, 35: 113–122, doi: 10.26374/fa.2018.35.47.
- Trawczyński C., 2020. Wpływ biostymulatorów na plon i jakość bulw ziemniaka uprawianego w warunkach suszy i wysokiej temperatury. Biuletyn Instytutu Hodowli i Aklimatyzacji Roślin, 289: 11–19, doi: 10.37317/biul-2020-0017.
- Trawczyński C., 2021. Assess of tuber yield and quality after foliar application of silicon and microelements. Agronomy Science, 76: 9–20, doi: 10.24326/as.2021.1.1.
- Trawczyński C., 2022. Effect of foliar fertilization with multicomponent fertilizers in form nanoparticle on the yield and quality of potato tubers. Agronomy Science, 78: 77–90, doi: 10.24326/as.2022.2.7.
- Vanneste S., Friml J., 2013. Calcium: the missing link in auxin action. Plants, 2(4): 650–675, doi: 10.3390/plants2040650.
- Wadas W., 2022. Possibility of increasing early potato yield with foliar application of silicon. Agronomy Science, 77: 61–75, doi: 10.24326/as.2022.2.6.
- Wadas W., Kondraciuk T., 2025. The role of foliar-applied silicon in improving the growth and productivity of early potatoes. Agriculture, 15, 556, doi: 10.3390/agriculture15050556.
- Weber E., Bleiholder H., 1990. Erläuterungen zu den BBCH-Dezimal-Codes für die Entwicklungsstadien von Mais, Raps, Faba-Bohne, Sonnenblume und Erbse – mit Abbildungen. Gesunde Pflanzen, 42: 308–321.
- White P.J., Broadley M.R., 2003. Calcium in plants. Annals of Botany, 92(4): 487–511, doi: 10.1093/aob/mcg164.
- Zamojska J., Danielewicz J., Jajor E., Wilk R., Horoszkiewicz-Janka J., Dworzanska D., Węgorek P., Korbas M., Bubniewicz P., Ciecierski W., Narkiewicz-Jodko J., 2018. The Influence of foliar application of silicon on insect damage and disease occurrence in field trials. Fresenius Environmental Bulletin, 27: 3300–3305.
- Zarzecka K., 2006. Metoda kalkulacji różnicowych w ochronie ziemniaka przed chwastami. Roczniki Naukowe Stowa-rzyszenia Ekonomistów Rolnictwa i Agrobiznesu, 8(1): 232–235.