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Research articles

Immobilization of trace elements and lettuce growth in soil amended with activated dolomite phosphate rock fertilizers

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Pages 2031-2043 | Received 14 Mar 2022, Accepted 24 Aug 2022, Published online: 12 Sep 2022

References

  • Bashir, S., J. Zhu, Q. Fu, and H. Hu. 2018. Cadmium mobility, uptake and anti-oxidative response of water spinach under rice straw biochar, Ipomoea Aquatic zeolite and rock phosphate as amendments. Chemosphere 194:579–587. doi: 10.1016/j.chemosphere.
  • Bindraban, P. S., C. O. Dimkpa, and R. Pandey. 2020. Exploring phosphorus fertilizers and fertilization strategies for improved human and environmental health. Biology and Fertility of Soils 56 (3):299–317. doi: 10.1007/s00374-019-01430-2.
  • Chen, S., Y. Ma, L. Chen, L. Wang, and H. Guo. 2010. Comparison of Pb(II) immobilized by bone char meal and phosphate rock: Characterization and kinetic study. Archives of Environmental Contamination and Toxicology 58 (1):24–32. doi: 10.1007/s00244-009-9338-3.
  • Chojnacka, K., K. Moustakas, and A. Witek-Krowiak. 2020. Bio-based fertilizers: A practical approach towards circular economy. Bioresource Technology 295:122223. doi: 10.1016/j.biortech.2019.122223.
  • Cui, H., Y. Shi, J. Zhou, H. Chu, L. Cang, and D. Zhou. 2018. Effect of different grain sizes of hydroxyapatite on soil heavy metal bioavailability and microbial community composition. Agriculture, Ecosystems and Environment 267:165–173. doi: 10.1016/j.agee.2018.08.017.
  • Dang, V. M., H. T. Van, H. T. M. Duong, D. H. Nguyen, H.-P. Chao, L. H. Nguyen, and C.-C. Lin. 2020. Evaluation of fly ash, apatite and rice straw derived-biochar in varying combinations for in situ remediation of soils contaminated with multiple heavy metals. Soil Science and Plant Nutrition 66 (2):379–388. doi: 10.1080/00380768.2020.1725913.
  • Gao, R., Q. Wang, Y. Liu, J. Zhu, Y. Deng, Q. Fu, and H. Hu. 2019. Co-pyrolysis biochar derived from rape straw and phosphate rock: Carbon retention, aromaticity, and Pb removal capacity. Energy & Fuels 33 (1):413–419. doi: 10.1021/acs.energyfuels.8b03753.
  • Huang, L., X. Y. Mao, J. Wang, D. M. Huang, J. H. Lin, and Z. W. Liao. 2013. Phosphorus availability and fertilizer efficiency of rock phosphate as affected by ultrafine activation. Acta Pedologica Sinica 50 (4):769–777. doi: 10.11766/trxb201209280389.
  • Jiang, G., Y. Liu, Q. Fu, H. Li, J. Zhang, and H. Hu. 2014. Immobilization of soil exogenous lead using raw and activated phosphate rocks. Environmental Progress & Sustainable Energy 33 (1):81–86. doi: 10.1002/ep.11754.
  • Liu, Y., L. Feng, H. Hu, and X. Zheng. 2013. Evaluation of phosphate rock and activated phosphate rock for remediation of copper-contaminated soils. Transactions of the Chinese Society of Agricultural Engineering 29 (11):180–186. doi: 10.3969/j.issn.1002-6819.2013.11.023.
  • Mao, X. Y., J. T. Xiong, L. Huang, and Z. W. Liao. 2013. Activated effects and structural characteristics of phosphate rock treated under different activating conditions. Chinese Journal of Soil Science 44 (03):684–690. doi: 10.19336/j.cnki.trtb.2013.03.029.
  • Mehlich. 1984. Mehlich 3 soil test extractant: a modification from Mehlich 2 extractant. Communications in Soil Science and Plant Analysis 1409–1416.
  • Modabberi, S., M. Tashakor, N. S. Soltani, and A. S. Hursthouse. 2018. Potentially toxic elements in urban soils: Source apportionment and contamination assessment. Environmental Monitoring and Assessment 190 (12):1–18. doi: 10.1007/s10661-018-7066-8.
  • Radziemska, M., A. Bęś, Z. M. Gusiatin, G. Majewski, Z. Mazur, A. Bilgin, I. Jaskulska, and M. Brtnický. 2020. Immobilization of potentially toxic elements (PTE) by mineral-based amendments: Remediation of contaminated soils in post-industrial sites. Minerals 10 (2):87. doi: 10.3390/min10020087.
  • Raj, D., and S. K. Maiti. 2019. Bioaccumulation of potentially toxic elements in tree and vegetable species with associated health and ecological risks: A case study from a thermal power plant, Chandrapura, India. Rendiconti Lincei Scienze Fisiche e Naturali 30 (3):649–665. doi: 10.1007/s12210-019-00831-7.
  • Raj, D., and S. K. Maiti. 2020. Sources, bioaccumulation, health risks and remediation of potentially toxic metal(loid)s (As, Cd, Cr, Pb and Hg): An epitomised review. Environmental Monitoring and Assessment 192 (2):1–20. doi: 10.1007/s10661-019-8060-5.
  • Sun, K. J., B. Zhao, Q. M. Lu, and Z. W. Liao. 2007. Study on release characteristics, fertilizer effect and activated mechanism of activated phosphoric fertilizers. Scientia Agricultura Sinica 40 (8):172–179.
  • Wang, X., G. Zheng, T. Chen, X. Shi, Y. Wang, E. Nie, and J. Liu. 2019. Effect of phosphate amendments on improving the fertilizer efficiency and reducing the mobility of heavy metals during sewage sludge composting. Journal of Environmental Management 235:124–132. doi: 10.1016/j.jenvman.2019.01.048.
  • Wei, W., J. Cui, and Z. Wei. 2014. Effects of low molecular weight organic acids on the immobilization of aqueous Pb(II) using phosphate rock and different crystallized hydroxyapatite. Chemosphere 105:14–23. doi: 10.1016/j.chemosphere.2013.09.121.
  • Xu, X., G. Jiang, Q. Fu, Y. Liu, and H. Hu. 2013. Effect of activated phosphate rocks on growth and quality of lettuce in heavy metal contaminated soils. Plant Nutrition and Fertilizer Science 19 (2):361–369. doi: 10.11674/zwyf.2013.0212.
  • Yang, Y., Z. He, X. Yang, and P. J. Stoffella. 2013. Dolomite phosphate rock (DPR) application in acidic sandy soil in reducing leaching of phosphorus and heavy metals-a column leaching study. Environmental Science and Pollution Research 20 (6):3843–3851. doi: 10.1007/s11356-012-1326-x.

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