Efficiency of Organo-Mineral Fertilizer Enriched with Citric Acid in Corn (Zea Mays L.) grown in the Greenhouse

Authors

DOI:

https://doi.org/10.33448/rsd-v9i7.4575

Keywords:

Organic acid; Poultry litter; Phosphate fertilizers; Bayóvar

Abstract

This research aimed to evaluate the effect of organomineral fertilizer enriched with citric acid, on accumulation of dry matter content and phosphorus (P) in maize plants grown in greenhouse. A randomized block design with 6x3 factorial was used, combining six P sources (triple superphosphate, natural reactive phosphate of Bayóvar, superphosphate + poultry litter, Bayóvar phosphate + poultry litter, superphosphate + poultry litter + citric acid, Bayóvar phosphate + poultry litter + citric acid), three applied P levels (40, 80 and 120 kg ha-1 of P2O5), with four repetitions. The organomineral fertilizers produced with superphosphate provided higher accumulation of dry matter and P in shoots of maize plants than the organomineral fertilizers with Bayóvar phosphate. Plants that received the organomineral fertilizers with superphosphate presented higher accumulation of biomass and P in shoots than plants that received solely superphosphate, without effect of citric acid. The citric acid added to the organomineral fertilizer produced with natural reactive Bayóvar phosphate increased the accumulation of P in roots. The incorporation of organic matter to triple superphosphate increases maize growth and that the addition of citric acid to the organomineral fertilizers produced with natural phosphate increases the root growth.

Author Biographies

Rodrigo Braghiroli, Instituto Federal Goiano - Campus Rio Verde

Doutor em Fitotecnia pela Universidade Federal Rural do Rio de Janeiro, Professor EBTT do Instituto Federal Goiano - Campus Rio Verde desde 2009.

Vinicius de Melo Benites, Embrapa Solos

Embrapa Solos, jardim Botânico, Rio de Janeiro, Brasil

References

Almeida, T., Pocojeski, E., Nesi, C.N., Silva, L.S. & Oliveira, J.P.M. (2016). Eficiência de fertilizante fosfatado protegido na cultura do milho. Scientia Agraria, 17(1): 29-35.

Araújo, F.F. (2011). Disponibilidade de fósforo, correção do solo, teores foliares e rendimento de milho após incorporação de fosfatos e lodo de curtume natural e compostado. Acta Scientiarum Agronomy, 33(2): 355-360.

Bolan, N., Naidu, R., Mahimairajara S. & Baskaran, S. (1994). Influence of low-molecular-weight organic acids on the solubilization of phosphates. Biology and Fertility of Soils, 18(4): 311-319.

Brasil, E. C., & Muraoka, T. (1997). Avaliação Agronômica de Fertilizantes Fosfatados de Solos do Pará. Disponível em: <https://ainfo.cnptia.embrapa.br/digital/bitstream/item/42798/1/Boletim-Pesquisa-171-CPATU.pdf>. Acesso em 17 de 05 de 2020.

Embrapa, Empresa Brasileira de Pesquisa Agropecuária. (2009). Manual de análises químicas de solos, plantas e fertilizantes (2ª ed.). (F. C. Silva, Ed.) Brasília, DF, Brasil: Embrapa Informação Tecnológia.

Ferreira, D. F., (2014) Sisvar: a Guide for its Bootstrap procedures in multiple comparisons. Ciência e Agrotecnologia, 38(2) 109-112. http://dx.doi.org/10.1590/S1413-70542014000200001.

Geelhoed, J., Van Riemsdijk, W. & Findenegg, G. (1999). Simulation of the effect of citrate exudation from roots on the plant availability of phosphate adsorbed on goethite. European Journal of Soil Science, v. 50(3): 379-390.

Guppy, C., Menzies, N., Moody, P. & Blamey, F. (2005). Competitive sorption reactions between phosphorus and organic matter in soil: a review. Australian Journal of Soil Research, 43(2): 189-202.

Haynes, R. (1984). Lime and phosphate in the soil-plant system. Advances in Agronomy, 37: 249-315.

Iyamuremye, F. & Dick, R. (1996). Organic amendments and phosphorus sorption by soils. Advances in Agronomy, 56: 457-461.

Khiari, L. & Parent, L.E. (2005). Phosphorus transformations in acid light-textured soils treated with dry swine manure. Canadian Journal of Soil Science, 85(1): 75-87.

Kiehl, E. J. (2013). Fertilizantes organominerais. 5. ed. Atual. Piracicaba, SP, Brasil: Editora Degaspari.

Lee, Y.S. & Bartlett, R.J. (1976). Stimulation of plant growth by humic substances. Soil Science Society of America Journal, 40: 479-576.

Levrero, C.R. (2009). Fertilizante organomineral: a serviço do mundo. FÓRUM abisolo., Piracicaba – SP, Brasil. p. 1-21 Disponível em: <http://www.abisolo.com.br/forum/fertilizantesorganominerais.php> Acesso em 15 mar. 2015.

Lopes, A.S.; Cox, F.R. (1979). Relação de características físicas químicas e mineralógicas com fixação de fósforo em solos sob Cerrados. Revista Brasileira de Ciência do Solo, Campinas, SP, Brasil. 3: 82-88.

Novais, R.F., Smyth, T.J., & Nunes, F.N. (2007). Fósforo. In: Novais, R.F., Alvarez, V.H., Barros, N.F., Fontes, R.L.F., Cantarutti, R.B. & J.C.L. Neves (Eds.). Fertilidade do solo (1ª ed., p. 471-537). Viçosa, MG, Brasil: Sociedade Brasileira de Ciência do Solo.

Novais, R.; & Smyth, T. (1999). Fósforo em solo e planta em condições tropicais [versão eletrônica]. Informações Agronômicas, 87: 10-15.

Parent, L.E., Khiari, L. & Pellerin, A. (2003). The P fertilization of potato: Increasing agronomic efficiency and decreasing environmental risk. Acta Horticulturae, 627: 35-41.

Pereira, A.S. et al. (2018). Metodologia do trabalho científico. [e-Book]. Santa Maria. Ed. UAB / NTE / UFSM. Disponível em: https://repositorio.ufsm.br/bitstream/handle/1/15824/Lic_Computacao_MetodologiaPesquisa-Cientifica.pdf?sequence=1. Acessado em: 17 de Maio, 2020.

Sá, J. M., Jantalia, C. P., Teixeira, P. C., Polidoro, J. C. Benites, V. M. & Araújo, A.P., (2017). Agronomic and P recovery efficiency of organomineral phosphate fertilizer from poultry litter in sandy and clayey soils, Pesquisa Agropecuária Brasileira, 52(9): 786-793. DOI: 10.1590/S0100-204X2017000900011

Sanyal, S. K., De Datta, S. K. (1991). Chemistry of phosphorus transformations in soil (S.K. Sanyal and S.K de Datta eds.). New York: Springer Verlag Press.

Schachtman, D. P., Reid, R. J. & Ayling, S. M. (1998). Phosphorus uptake by plants: from soil to cell. Plant Physiology. 116: 447-453. DOI: https://doi.org/10.1104/pp.116.2.447

Stevenson, F.J. (2009). Humus chemistry: genesis, composition reactions (F.J. Setevenson, ed.). New York: John Willey

Teixeira, W. G., Sousa, R. T. X., & Korndorfer, G. H. (2014). Resposta da cana-de-açúcar a doses de fósforo fornecidas por fertilizante organomineral. Bioscience Journal, 30(6): 1729-1736.

Villapando, R., & Graetz, D. (2001). Phosphorus sorption and desorption properties of the spodic horizon from selected Florida spodosols. Soil Science Society of America Journal, 65(2):.331-339.

Zebarth, B.J., Chabot, R., Coulombe, J., Simard, R.R., Douheret, J., & Tremblay, N. (2012). Pelletized organo-mineral fertilizer product as a nitrogen source for potato production. Canadian Journal of Soil Science, 85(3): 387-395.

Published

30/05/2020

How to Cite

BRAGHIROLI, R.; BENITES, V. de M.; ARAÚJO, A. P. de. Efficiency of Organo-Mineral Fertilizer Enriched with Citric Acid in Corn (Zea Mays L.) grown in the Greenhouse. Research, Society and Development, [S. l.], v. 9, n. 7, p. e702974575, 2020. DOI: 10.33448/rsd-v9i7.4575. Disponível em: https://rsdjournal.org/index.php/rsd/article/view/4575. Acesso em: 18 nov. 2024.

Issue

Section

Agrarian and Biological Sciences