Humic Acid for Reducing Carbofuran Content of Rice Grown in Carbofuran-Contaminated Soil
Abstract
Keywords
Full Text:
PDFReferences
Afify, A.E.M.R., M.A. Abo-El-Seoud, G.M. Ibrahim, I.M.M Helal, and B.W Kassem. 2012. Exposing of Trichoderma spp. to gamma radiation for stimulating its pesticide biodegradation activity. J Rad Res Appl Sci 5(2): 441-454.
Benicha. M., R. Mrabet and A. Azmani. 2013. Dissipation processes of 14C-carbofuran in soil from Northwest Morocco as influenced by soil water content, temperature and microbial activity. J Environ Chem Ecotoxic 5(5):119-128.
Bansal, O.P. 2014. Adsorption and desorption of three carbamate pesticides by montmorillonite and humic acid-clay complexes. J Adv Chem 57(4):287-290.
Banaay, C.G.B, C.M.V Cruz, and V.C. Cuevas. 2013. Effect of organic matter amendment on the rhizosphere microbial community and root-infecting pathogens of aerobic rice variety Apo. Philippine Sci Lett 6(1):107-118.
Chansuvarn, W., and S. Chansuvarn. 2018. Distribution of residue carbofuran and glyphosate in soil and rice grain. Appl Mech Mat 879:118–124.
Chianese, S., A. Fenti, P. Iovino., and Salvestrini. 2020. Sorption of organic pollutants by humic acids: A review. Molecules. 2020;25(4): 918.
Devi, K.Y., and P. Iyer. 2016. Fungal bio degradation of carbofuran pesticide. International J Res Studies Biosci 4(12): 54-57.
Ding, C., S. Du, Y. Ma, and X.X. Wang. 2018. Changes in the pH of paddy soils after flooding and drainage: Model and validation. Geoderma. 337:511-513.
EI-Dolify, M., M. Abdrabbo, A.A. EI-yazied, and M. Eldeeb. 2016. Effect of using soil conditioners on tomato yield and water use efficiency. Arab Univ J Agric Sci 24(1):195-204.
Fatunsin, O.T., A.O. Oyeyiola, M.O. Moshood, M. Latifat, Aka nbi, and D.F.Fadahunsi. 2020. Dietary risk assessment of organophosphate and carbamate pesticide residues in commonly eaten food crops. Sci Afr 8:e00442.
Kumar, V., S. Singh, S. Kaur, N.U padhyay, and J. Singh. 2019. Spectrophotometric Interaction of Carbofuran on Food Grains. J Gujarat Res Soc 21(8):841-850
Li, N., Y-Z. Xu, X-Z. Han, H-B. He, X-D. Zhang, and B. Zhang. 2015. Fungi contribute more than bacteria to soil organic matter through necromass accumulation under different agricultural practices during the early pedogenesis of a Mollisol. Eur J Soil Biol 67:51-58.
Lv. X., Q. Chang, H. Li, S. Liang, Z. Zhe, S. Shen, and G. Pang. 2022. Ecotoxicology and Environmental Safety Risk assessment of carbofuran residues in fruits and vegetables at the Chinese market: A 7-year survey. Ecotoxicology and Environmental Safety 239(1): 113667
Mishra, S., W. Zhang, Z. Lin, S. Pang, Y. Huang, P. Bhatt, S. Chen. 2023. Carbofuran toxicity and its microbial degradation in contaminated environments. Chemosphere 259:127419.
Reitsma, K.D., D.E. Clay, and C.G. Carlson. 2011. Soil Fertility. Pp 27 Chapter 2 In Deneke, D. (ed). Alternative practices for agronomic nutrient and pest management in South Dakota. 1st ed. Brookings: South Dakota State University, College of Agriculture and Biological Sciences; Chapter 2 pp 28. South Dakota State University, College of Agriculture and Biological Sciences.
Shaheen, I., K.S. Ahmad, and T. Zahr. 2019. Evaluating the fate of agrochemical through adsorption and desorption studies of chlorfluazuron in selected agricultural soils. J King Saud Univ – Sci 31(4): 612-617
Singh, R. and G. Srivastava G. 2009. Adsorption and movement of carbofuran in four different soils varying in physical and chemical properties. Sci Technol 27(2): 193-2003.
Sudiono, S., M. Yuniarti, D. Siswanta, E.S. Kunarti, Triyono, and S.J. Santoso. 2017. The role of carboxyl and hydroxyl groups of humic acid in removing AuCl4–from Aqueous Solution. Indonesian J Chem 17(1):95–104.
Velmourougane, K., G. Saxena, and R. Prasanna. 2017. Plant-microbe interactions in the rhizosphere: Mechanisms and their ecological benefits. In Singh, D., H. Singh, and R. Prabha (eds) Plant-Microbe Interactions in Agro-Ecological Perspectives. Springer, Singapore.
Yan, S., N. Zhang, J. Li, Y. Wang, Y. Liu, N. Cao, and Q. Yan. 2021. Characterization of humic acids from original coal and its oxidization production. Sci Rep 11:15381.
Zahmatkesh, M., H. Spanjers, M.J. Toran, P. Blánquez, and J.B. van Lier. 2016. Bioremoval of humic acid from water by white rot fungi: exploring the removal mechanisms. AMB Express. 6:118.
Zhang, C.P., H.M. He, J.Z. Yu, X.Q. Hu, Y.H. Zhu, and Q. Wang. 2016. Residues of carbosulfan and its metabolites carbofuran and 3-hydroxy carbofuran in rice field ecosystem in China. J Environ Sci Health B. 51(6):351-7.
DOI: http://dx.doi.org/10.33512/jur.agroekotetek.v15i1.20049
Refbacks
- There are currently no refbacks.
Copyright (c) 2023 Jurnal Agroekoteknologi
This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.
INDEXED BY:
View My Stats
This work is licensed under a Creative Commons Attribution 4.0 International License.