183
Views
12
CrossRef citations to date
0
Altmetric
Research Article

Adsorption Kinetics and Isotherm Modeling of Lead in Calcareous Soils: Insights into Thermodynamics, Desorption, and Soil Properties

ORCID Icon
Pages 2059-2076 | Received 06 Sep 2022, Accepted 27 Apr 2023, Published online: 15 May 2023

References

  • Adriano, D. C. 1986. TracE Elements In The Terrestrial Environments, 533 pp. New York: Springer-Verlang.
  • Ahmed, I., A. A. Helal, N. A. El Aziz, R. Gamal, N. O. Shaker, and A. A. Helal. 2019. Influence of some organic ligands on the adsorption of lead by agricultural soil. Arabian Journal of Chemistry 12 (8):2540–47. CrossRef. doi:10.1016/j.arabjc.2015.03.012.
  • Alloway, B. J. 1995. Heavy Metals in Soils, 368. Second ed. Netherlands: Blackie Academic & Professional.
  • Basta, N. T., and M. A. Tabatabai. 1992. Effect of cropping systems on adsorption of metals by soils: II. effect of pH. Soil Science 153 (3):195–204. doi:10.1097/00010694-199203000-00004.
  • Benhammou, T. A., A. Yaacoubi, L. Nibou, and B. Tanouti. 2005. Adsorption of metal ions onto Moroccan Steven site: kinetic and isotherm studies. Journal of Colloid and Interface Science 282 (2):320–26. doi:10.1016/j.jcis.2004.08.168.
  • Davis, J. A., and J. O. Leckie. 1980. Surface ionization and complexation at the Oxide/Water Interface 3. adsorption of Anions. Journal of Colloid and Interface Science 74:32–43. doi:10.1016/0021-9797(80)90168-X.
  • Diatta, J., and W. Kocialkowski. 1998. Adsorption of Zinc in some selected soils. Polish Journal of Environmental Studies 7 (4):195–200.
  • Gee, G. W., and J. W. Bauder. 1986. Particle-size analysis. In methods of soil analysis, part 1. In Physical and mineralogical methods, ed. A. Klute, 383–411. 2nd ed. Madison, WI: ASA, SSSA.
  • Gupta, P. K. 2000. Soil, plant, water and fertilizer analysis. India, New Dehli: Agrobios.
  • Jalali, M., and Z. V. Khanlari. 2008. Effect of Aging process on the fractionation of heavy metals in some calcareous soils of Iran. Geoderma 143 (1–2):26–40. doi:10.1016/j.geoderma.2007.10.002.
  • Jenne, E. A., D. DiToro, E. A. Herbert, and C. S. Zarba, 1986. Activity-based model for developing sediment criteria for metals: Part I. A new approach. For chemicals in the environment. Proceeding of International Conference, Lisbon, Portugal.
  • Jiang, H., B. Hu, J. Zhang, and X. Chen. 2015. Adsorption of perrhenate ion by bio-char produced from acidosasa edulis shoot shell in aqueous solution. RSC Advances 5 (127):104769–78. doi:10.1039/C5RA20235C.
  • Kabata-Pendias, A. 2011. Trace elements in soils and plants. 4th ed. Boca Raton, London, New York: Taylor & Francis Group.
  • Lindsay, W. L. 2001. Chemical equilibria in soils. New Jersey: Blackburn Press.
  • Lindsay, W. L., and W. A. Norvell. 1978. Development of a DTPA soil test for Zinc, Iron, Manganese, and Copper. Soil Science Society of America Journal 42 (3):421–28. doi:10.2136/sssaj1978.03615995004200030009x.
  • Lin, S. H., and W. Y. Liu. 1994. Treatment of textile wastewater by ozonation in a packed‐bed reactor. Environmental Technology 15 (4):299–311. doi:10.1080/09593339409385433.
  • Li, J. X., X. E. Yang, Z. L. He, G. Jilani, C. Y. Sun, and S. M. Chen. 2007. Fractionation of lead in paddy soils and its bioavailability to rice plants. Geoderma 141 (3–4):174–80. doi:10.1016/j.geoderma.2007.05.006.
  • Lopes, G., E. T. S. Costa, E. S. Penido, D. L. Sparks, and L. R. G. Guilherme. 2015. Binding intensity and metal partitioning in soils affected by mining and smelting activities in Minas Gerais, Brazil. Environmental Science & Pollution Research 22 (17):13442–52. doi:10.1007/s11356-5.
  • MacNaughton, M. G. 1977. In “Biological implications of metals in the environment”. H. Drucker, and R.E. Wildung, eds. 240–53. SpringfieldVirginia
  • McBride, M. B. 1989. Reactions controlling heavy metal solubility in soils. In Advances in Soil Science, ed. B. A. Stewart, Vol. 10 1–56. New York: Springer-Verlag. doi: 10.1007/978-1-4613-8847-0_1.
  • McLaughlin, M. J., D. R. Parker, and J. M. Clarks. 1999. Metals and micronutrients – food safety issues. Field Crops Research 60 (1–2):143–63. doi:10.1016/S0378-4290(98)00137-3.
  • Nelson, D. W., and L. E. Sommers. 1982. Total Carbon, Organic Carbon and Organic Matter. In Methods of Soil Analysis, ed. A. L. Page, et al. 539–79. ASA, SSSA, Madison, WI.
  • Niu, L. L., F. X. Yang, C. Xu, H. Y. Yang, and W. P. Liu. 2013. Status of metal accumulation in farmland soils across China: From distribution to risk assessment. Environmental Pollution 176:55–62. doi:10.1016/j.envpol.2013.01.019.
  • Nriagu, J.O. 1980. Production Uses, and Properties of Cadmium. John Wiley & Sons, New York.
  • Rassaei, F. 2021. Effect of different acidic phosphorus agents on the cadmium chemical fractions in calcareous soil. Arabian Journal of Geosciences 14 (21):1–8. doi:10.1007/s12517-021-08594-y.
  • Rassaei, F. 2022a. Effect of monocalcium phosphate on the concentration of cadmium chemical fractions in two calcareous soils in Iran. Soil Science Annual 73 (2):152586. doi:10.37501/soilsa/152586.
  • Rassaei, F. 2022b. The effect of sugarcane bagasse biochar on maize growth factors in lead and Cadmium-Polluted soils. Communications in Soil Science & Plant Analysis 54 (10):1426–46. doi:10.1080/00103624.2022.2146704.
  • Rassaei, F. 2022c. Effect of Two Different Sources of Organic Amendments on Soil Characteristics and Chemical Forms of Cadmium. Agrochimica: International Journal of Plant Chemistry, Soil Science and Plant Nutrition of the University of Pisa 66 (4):277–93. doi:https://doi.org/10.12871/00021857202244.
  • Rassaei, F. 2023a. Kinetics, isotherms, thermodynamic adsorption, and desorption studies of chromium in two types of calcareous soils. Arabian Journal of Geosciences 16 (3):214. doi:10.1007/s12517-023-11291-7.
  • Rassaei, F. 2023b. Sugarcane bagasse biochar changes the sorption kinetics and rice (Oryza sativa L.) Cadmium Uptake in a paddy soil. Gesunde Pflanzen. doi:10.1007/s10343-023-00860-1.
  • Rassaei, F. 2023c. Biochar Effects on Rice Paddy Cadmium Contaminated Calcareous Clay Soil: A Study on Adsorption Kinetics and Cadmium Uptake. Paddy Water Environ. doi:10.1007/s10333-023-00937-7.
  • Rassaei, F. 2023d. Nitrous oxide emissions from rice paddy: Impacts of rice straw and water management. Env Prog and Sustain Energy. doi:10.1002/ep.14066.
  • Rassaei, F. 2023e. Methane emissions and rice yield in a paddy soil: the effect of biochar and polystyrene microplastics interaction. Paddy Water Environ 21(1): 85–97. doi:10.1007/s10333-022-00915-5.
  • Rassaei, F. 2023f. Sugarcane bagasse biochar affects corn (Zea mays L.) growth in cadmium and lead-contaminated calcareous clay soil. Arab J Geosci 16 (3). doi:10.1007/s12517-023-11225-3.
  • Rassaei, F., M. Hoodaji, and S. Abtahi. 2019b. Cadmium chemical forms in two calcareous soils treated with different levels of incubation time and moisture regimes. Journal of Environmental Protection 10 (04):500–13. doi:10.4236/jep.2019.104029.
  • Rassaei, F., M. Hoodaji, and S. A. Abtahi. 2019a. Zinc and incubation time effect on cadmium chemical fractions in two types of calcareous soil. Zinc and incubation time effect on cadmium chemical fractions in two types of calcareous soil. Agrochimica: International Journal of Plant Chemistry, Soil Science and Plant Nutrition of the University of Pisa 63 (4):337–49. doi:10.12871/00021857201943.
  • Rassaei, F., M. Hoodaji, and S. A. Abtahi. 2020a. Adsorption kinetic and cadmium fractions in two calcareous soils affected by zinc and different moisture regimes. Paddy and Water Environment 18 (4):595–606. doi:10.1007/s10333-020-00804-9.
  • Rassaei, F., M. Hoodaji, and S. A. Abtahi. 2020b. Cadmium fractions in two calcareous soils affected by Incubation Time, Zinc and Moisture Regime. Communications in Soil Science & Plant Analysis 51 (4):456–67. doi:10.1080/00103624.2020.1718685.
  • Rassaei, F., M. Hoodaji, and S. A. Abtahi. 2020c. Cadmium speciation as influenced by soil water content and zinc and the studies of kinetic modeling in two soils textural classes. International Soil and Water Conservation Research 8 (3):286–94. doi:10.1016/j.iswcr.2020.05.003.
  • Rassaei, F., M. Hoodaji, and S. A. Abtahi. 2020d. Fractionation and mobility of cadmium and zinc in calcareous soils of Fars Province, Iran. Arabian Journal of Geosciences 13 (20):1097. doi:10.1007/s12517-020-06123-x.
  • Richards, L. A. 1969. Diagnosis and Improvement of Saline and Alkali Soils 160. Washington: United States Salinity Laboratory. USDA. Agriculture Handbook, 60. [Google Scholar.
  • Singh, A. K., and S. B. Pandeya. 1998. Sorption and release of cadmium-fulvic acid complexes in sludge treated soils. Bioresource Technology 66 (2):119–27. doi:10.1016/S0960-8524(98)00035-2.
  • Skerfving, S., and I. A. Bergdahl. 2007. Lead. In Handbook on the Toxicology of Metals, G. F. Nordberg, B. A. Fowler, M. Nordberg, and L. T. Friberg. ed., Third, 599–643. Academic Press. https://doi.org/10.1016/B978-012369413-3/50086-0
  • Sparks, D. L. 2003. Environmental soil chemistry. 2nd ed. Amsterdam, The Netherlands: Elsevier.
  • World Reference Base for Soil Resources. 2014, update 2015. International soil classification system for naming soils and creating legends for soil maps. World Soil Resources Reports No. 106. FAO, Rome. [ Google Scholar]
  • Xu, R., S. Xiao, A. Zhao, and G. Ji. 2005. Effect of Cr(VI) anions on adsorption and desorption behavior of Cu(II) in the colloidal systems of two authentic variable charge soils. Journal of Colloid and Interface Science 284 (1):22–29. doi:10.1016/j.jcis.2004.09.053.
  • Zachara, J. M., D. C. Girvin, R. L. Schmidt, and C. T. Resch. 1987. Chromate adsorption on amorphous iron oxyhydroxide in the presence of major groundwater ions. Environmental Science & Technology 21 (6):589–94. doi:10.1021/es00160a010.
  • Zhang, X. W., L. S. Yang, Y. H. Li, H. R. Li, W. Y. Wang, and B. X. Ye. 2012. Impacts of lead/zinc mining and smelting on the environment and human health in China. Environmental Monitoring and Assessment 184 (4):2261–73. doi:10.1007/s10661-011-2115-6.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.