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Are Nanosilica, Potassium Silicate and New Soluble Sources of Silicon Effective for Silicon Foliar Application to Soybean and Rice Plants?

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Abstract

Foliar application of silicon (Si) is an effective way of supplying this beneficial element to plants. The emergence of new potential liquid sources for foliar application requires studies to assess the effectiveness of supplying Si to plants, as well as its effects on agronomic performance indicators. In this respect, the present study evaluates the effect of four sources (stabilized silicic acid; nanosilica; potassium silicate; and stabilized potassium sodium silicate) and four concentrations (0, 0.5; 1.0; 1.5 g L−1) of Si by foliar application in soybean and rice plants. An experiment was conducted for both species. The plants were grown in a greenhouse in 7 dm3 pots filled with vermiculite and nutrient solution. Four foliar application were performed during growth of the species. In both experiments, the dark green color index, electrolyte leakage, Si content, Si accumulation, shoot dry weight and production components were evaluated. In both species, all sources were effective to foliar application up to 1.2 g L−1 Si. Stabilized potassium sodium silicate increased shoot Si accumulation and grain production, being effective for foliar application in soybean and rice at around 1.0 g L−1 Si. The application of 1.5 g L−1 Si with nanosilica resulted in an improvement in shoot dry weight and grain production for both species. Maybe, its use can be more effective if applied more times during the plant life cycle or in higher concentration but more studies should be performed to determine its potential. Stabilized silicic acid can become an interesting source of silicon but need to be improved.

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References

  1. Le Gall H, Philippe F, Domon JM, Gillet F, Pelloux J, Rayon C (2015) Cell wall metabolism in response to abiotic stress. Plants 4:112–166

    Article  Google Scholar 

  2. Ma JF, Miyake Y, Takahashi E (2001) Silicon as a beneficial element for crop plants. Stud Pl Sci 8:17–39

    Article  CAS  Google Scholar 

  3. Ma JF (2004) Role of silicon in enhancing the resistance of plants to biotic and abiotic stresses. Soil Sci Plant Nutr 50:11–18

    Article  CAS  Google Scholar 

  4. Savvas D, Ntatsi G (2015) Biostimulant activity of silicon in horticulture. Sci Hortic 196:66–81

    Article  CAS  Google Scholar 

  5. Zanão Júnior LA, Fontes RLF, Avila VT (2009) Aplicação do silício para aumentar a resistência do arroz à mancha-parda. Pesq. Agropec Bras 44:203–206

    Article  Google Scholar 

  6. Cacique IS, Domiciano GP, Moreira WR, Rodrigues FA, Cruz MFA, Serra NS, Català AB (2013) Effect of root and leaf applications of soluble silicon on blast development in rice. Bragantia 72:304–309

    Article  CAS  Google Scholar 

  7. Buck GB, Korndörfer GH, Nolla A, Coelho L (2008) Potassium silicate as foliar spray and rice blast control. J Plant Nutr 31:231–237

    Article  CAS  Google Scholar 

  8. Rodrigues FA, Duarte HSS, Domiciano GP, Souza CA, Korndörfer GH, Zambolim L (2009) Foliar application of potassium silicate reduces the intensity of soybean rust. Australas Plant Pathol 38:366–372

    Article  CAS  Google Scholar 

  9. Iler RK (1979) The chemistry of silica. Plenum Press, New York

    Google Scholar 

  10. Chan SH (1989) A review on solubility and polymerization of silica. Geothermics 18:49–56

    Article  CAS  Google Scholar 

  11. Tréguer P, Nelson DM, Van Bennekom AJ, DeMaster DJ, Leynaert A, Queguiner B (1995) The silica balance in the world ocean: a reestimate. Science 268:375–379

    Article  Google Scholar 

  12. Gallinari M, Ragueneau O, Corrim L, Demaster DJ, Tréguer P (2002) The importance of water column processes on the dissolution properties of biogenic silica in deep-sea sediments: I. Solubility Geochem Cosmochim Acta 66:2701–2717

    Article  CAS  Google Scholar 

  13. Prakash NB, Chandrashekar N, Mahendra C, Patil SU, Thippeshappa GN, Laane HM (2011) Effect of foliar spray of soluble silicic acid on growth and yield parameters of wetland rice in hilly and coastal zone soils of Karnataka, South India. J Plant Nutr 34:1883–1893

    Article  CAS  Google Scholar 

  14. Crusciol CAC, Soratto RP, Castro GSA, Costa HM, Ferrari Neto J (2013) Aplicação foliar de ácido silícico estabilizado na soja, feijão e amendoim. Rev Ciênc Agron 44:404–410

    Article  Google Scholar 

  15. Laane HM (2017) The effects of the application of foliar sprays with stabilized silicic acid: an overview of the results from 2003-2014. Silicon 9:803–807

    Article  CAS  Google Scholar 

  16. Neeru, J, Shaliesh, C, Vaishali, T, Purav, S, Manoherlal, R (2016) Role of orthosilicic acid (OSA) based formulation in improving plant growth and development. Silicon 1–6

  17. Wang S, Wang F, Gao S (2015) Foliar application with nano-silicon alleviates cd toxicity in rice seedlings. Environ Sci Pollut Res 22:2837–2845

    Article  CAS  Google Scholar 

  18. Oliveira RLL, Prado RM, Felisberto G, Checchio MV, Gratão PL (2019) Silicon mitigates manganese deficiency stress by regulating the physiology and activity of antioxidant enzymes in sorghum plants. J Soil Sci Plant Nutr 19:524–534

    Article  Google Scholar 

  19. Oliveira RLL, Prado RM, Felisberto G, Cruz FJR (2019) Different sources of silicon by foliar spraying on the growth and gas exchange in sorghum. J Soil Sci Plant Nutr 19:948–953

    Article  Google Scholar 

  20. Teixeira GCM, Prado RM, Rocha AMS, Santos LCN, Sarah MMS, Gratão PL, Fernandes C (2020) Silicon in pre-sprouted sugarcane seedlings mitigates the effects of water deficit after transplanting. J Soil Sci Plant Nutr. https://doi.org/10.1007/s42729-019-00170-4

  21. Hoagland DR, Arnon DI (1950) The water culture method for growing plants without soils. California Agricultural Experimental Station, Berkeley

    Google Scholar 

  22. Fehr WR, Caviness CE (1977) Stages of soybean development. Yowa State University of Science and Technology. Cooperative Extension Service, Ames

    Google Scholar 

  23. Counce PA, Keisling TC, Mitchell AJ (2000) A uniform, objective, and adaptative system for expressing rice development. Crop Sci 40:436–443

    Article  Google Scholar 

  24. Dionisio-Sese ML, Tobita S (1998) Antioxidant responses of rice seedlings to salinity stress. Plant Sci 135:1–9

    Article  CAS  Google Scholar 

  25. Korndörfer GH, Pereira HSP, Nolla A (2004) Análise de silício: solo, planta fertilizante. GPSi-ICIAG-UFU, Uberlândia

    Google Scholar 

  26. Brasil, Ministério da Agricultura, Pecuária e Abastecimento (2009) Regras para análise de sementes. MAPA/ACS, Brasília

    Google Scholar 

  27. Maia AS, Santos JM (1997) A SEM technique for preparing biological control agents of nematodes in action. Acta Microsc 6:550–551

    Google Scholar 

  28. Barbosa, JC, Maldonado Jr, W (2015) AgroEstat – Sistema para análises estatísticas de ensaios agronômicos: Version 1.1.0.712rev77, Funep, Jaboticabal

  29. Persson, M, Tokarz, M, Dahlgren, ML, Johansson-Vestin, H (2000) silica-based sols. WO2000066492 A1, Wipo Patentscope

  30. Kudryavtsev PG, Figovsky OL (2016) Nanocomposite organomineral hybrid materials. Nanotehnologii v stroitel’stve 8:16–56

    Article  Google Scholar 

  31. Zaimoglu Onat B, Bakal H, Gulluoglu L, Arioglu H (2017) The effects of high temperature at the growing period on yield and yield components of soybean [Glycine max (L.) merr] varieties. Turk J Field Crops 22:178–186

    Google Scholar 

  32. Zanão Júnior LA, Fontes RLF, Neves JCL, Korndörfer GH, Ávila VT (2010) Rice grown in nutrient solution with doses of manganese and silicon. Rev Bras Cienc Solo 34:1629–1639

    Article  Google Scholar 

  33. Hagedorn O, Fleute-Schlachter I, Mainx HG, Zeisler-Diehl V, Koch K (2017) Surfactant-induced enhancement of droplet adhesion in superhydrophobic soybean (Glycine max L.) leaves. Beilstein J. Nanotechnol 8:2345–2356

    CAS  Google Scholar 

  34. Hirano A, Shiraki K, Arakawa T (2012) Polyethylene glycol behaves like weak organic solvent. Biopolymers 97:117–122

    Article  CAS  Google Scholar 

  35. Dung PD, Ngoc LS, Duy NN, Thuy NN, Truc LTM, Le BV, Phu DV, Hien NQ (2016) Effect of nanosilica from rice husk on the growth enhancement of chili plant (Capsicum frutescens L.). J Sci Technol 54:607–613

    Google Scholar 

  36. Suriyaprabha R, Karunakaran G, Yuvakkumar R, Rajendran V, Kannan N (2014) Foliar application of silica nanoparticles on the phytochemical responses of maize (Zea mays L.) and its toxicological behavior. J Synth React Inorg Metal-Org Nano-Met Chem 44:1128–1131

    Article  CAS  Google Scholar 

  37. Janmohammadi M, Amanzadeh T, Sabaghnia N, Ion V (2016) Effect of nano-silicon foliar application on safflower growth under organic and inorganic fertilizer regimes. Bot Lith 22:53–64

    Google Scholar 

  38. Yamaji N, Mitani N, Ma JF (2008) A transporter regulating silicon distribution in rice shoots. Plant Cell 20:1381–1389

    Article  CAS  Google Scholar 

  39. Ning D, Song A, Fan F, Li Z, Liang Y (2014) Effects of slag-based silicon fertilizer on rice growth and brown-spot resistance. PLoS One 9:e102681

    Article  Google Scholar 

  40. Alvarez RCF, Prado RM, Felisberto G, Deus ACF, Oliveira RLL (2018) Effects of soluble silicate and nanosilica application on rice nutrition in an Oxisol. Pedosphere 28:597–606

    Article  Google Scholar 

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Acknowledgements

This study was financed in part by the Coordenação de Aperfeiçoamento de Pessoal de Nível Superior - Brasil (CAPES) - Finance Code 001.

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This study was financed in part by the Coordenação de Aperfeiçoamento de Pessoal de Nível Superior - Brasil (CAPES) - Finance Code 001.

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Correspondence to Guilherme Felisberto.

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Felisberto, G., de Mello Prado, R., de Oliveira, R.L.L. et al. Are Nanosilica, Potassium Silicate and New Soluble Sources of Silicon Effective for Silicon Foliar Application to Soybean and Rice Plants?. Silicon 13, 3217–3228 (2021). https://doi.org/10.1007/s12633-020-00668-y

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