155
Views
4
CrossRef citations to date
0
Altmetric
Research Articles

The role of low molecular weight organic acids in release kinetics of zinc and cadmium in polluted calcareous soil in the presence of fish scales derivatives

, &
Pages 50-63 | Received 19 Jul 2020, Accepted 03 Nov 2020, Published online: 01 Dec 2020

References

  • Geremias R, Fattorini D, Fávere VT, et al. Bioaccumulation and toxic effects of copper in common onion Allium cepa L. Chem Ecol. 2010;26:19–26.
  • Asilian E, Ghasemi-Fasaei R, Ronaghi A, et al. Effects of microbial inoculations and surfactant levels on biologically-and chemically-assisted phytoremediation of lead-contaminated soil by maize (Zea mays L.). Chem Ecol. 2018;34(10):964–977.
  • Koca FD, Demirezen YD, Duman F, et al. I. Comparison of phytotoxic effects of bio-synthesised copper oxide nanoparticle and ionic copper on Elodea canadensis. Chem Ecol. 2018;34(9):839–853.
  • Lu JH, Yang XP, Meng XC, et al. Predicting cadmium safety thresholds in soils based on cadmium uptake by Chinese cabbage. Pedosphere. 2017;27:475–481.
  • Schaefer H R, Dennis S, Fitzpatrick S. Cadmium: mitigation strategies to reduce dietary exposure. J Food Sci. 2020;85:260–267.
  • Huang Y, He C, Shen C, et al. Toxicity of cadmium and its health risks from leafy vegetable consumption. Food Func. 2017;8:1373–1401.
  • Seyedmohammadi J, Motavassel M, Maddahi MH, et al. Application of nanochitosan and chitosan particles for adsorption of Zn (II) ions pollutant from aqueous solution to protect environment. Model Earth Syst Environ. 2016;2:165.
  • Tripathi N, Choppala G, Singh RS. Evaluation of modified chitosan for remediation of zinc contaminated soils. J Geochem Explor. 2017;182:180–184.
  • Takkar PN, Mann MS. Toxic levels of soil and plant zinc for maize and wheat. Plant Soil. 1978;49:667–669.
  • Jarrah M, Ghasemi-Fasaei R, Ronaghi A, et al. Enhanced Ni phytoextraction by effectiveness of chemical and biological amendments in sunflower plant grown in Ni-polluted soils. Chem Ecol. 2019;35(8):732–745.
  • Barakat MA, Ismail SM, Ehsan M. Immobilization of Ni and Zn in soil by cow and chicken manure. Int J Waste Resour. 2016;6:228.
  • Zibaei Z, Ghasemi-Fasaei R, Ronaghi A, et al. Effective immobilisation of chromium in a polluted calcareous soil using modified biochar and bacterial inoculation. Chem Ecol. 2020; 36:827–838. doi:10.1080/02757540.2020.1789117.
  • Zibaei Z, Ghasemi-Fasaei R, Ronaghi A, et al. Improvement of biochar capability in Cr immobilization via modification with chitosan and hematite and inoculation with Pseudomonas putida. Commun Soil Sci Plant Anal. 2020;51:963–975.
  • Xu Y, Liang XF, Xu YM, et al. Remediation of heavy metal-polluted agricultural soils using clay minerals: a review. Pedosphere. 2017;27:193–204.
  • Storm L, Owen AG, Godbold DL, et al. Organic acid behaviour in a calcareous soil: sorption reactions and biodegradation rates. Soil Biol Biochem. 2001;33:2125–2133.
  • Adeleke R, Nwangburuk C, Oboiriend B. Origins, roles and fate of organic acids in soils: A review. South Afr J Bot. 2017;108:393–406.
  • Xin J, Huang B, Dai H, et al. Roles of rhizosphere and root-derived organic acids in Cd accumulation by two hot pepper cultivars. Environ Sci Pollut Res. 2014;22:6254–6261.
  • Oral A, Uygur V. Effects of low-molecular-mass organic acids on P nutrition and some plant properties of Hordeum vulgare. J Plant Nutr. 2018;41:1482–1490.
  • Taghipour M, Jalali M. Influence of organic acids on kinetic release of chromium in soil contaminated with leather factory waste in the presence of some adsorbents. Chemosphere. 2016;55:395–404.
  • Li YS, Hu XJ, Song XY. Desorption of cadmium from soils enhanced by citric acid. Adv Mat Res. 2012;610–613:235–238.
  • Hamidpour M, Karamooz M, Akhgar A, et al. Adsorption of cadmium and zinc onto micaceous minerals: Effect of siderophore desferrioxamine B. Pedosphere. 2017;29:590–597.
  • Ghobadian B. Liquid biofuels potential and outlook in Iran. Renew Sustain Energy Rev. 2012;16:4379–4384.
  • Wasswa J, Tang J, Gu X. Utilization of fish processing by-products in the gelatin industry. Food Rev Int. 2007;23:159–174.
  • Yadav M, Goswami P, Paritosh K, et al. Seafood waste: a source for preparation of commercially employable chitin/chitosan materials. Biores Bioprocces. 2019;6:8.
  • Silvos M. Fish processing by-products explotation and innovative fish-based food production. Economics. 2018. Res Rural Develop. 2018;2:210.
  • Pala D, Maiti SK. An approach to counter sediment toxicity by immobilization of heavy metals using waste fish scale derived biosorbent. Ecotox Environ Safe. 2020;187:109833.
  • Nadeem R, Ansari TM, Khalid AM. Fourier transform infrared spectroscopic characterization and optimization of Pb (II) biosorption by fish (Labeo rohita) scales. J Hazard Mater. 2008;156:64–73.
  • Chowdhury S, Saha P D, Ghosh U. Fish (Labeo rohita) scales as potential low-cost biosorbent for removal of Malachite Green from aqueous solutions. Bioremed J. 2012;16:235–242.
  • Zayadi N, Othman N. Removal of zinc and Ferum Ions using Tilapia Mossambica fish scale. Int J Integ Eng. 2013;5:23–29.
  • Hamed I, Ozogul F, Regenstein JM. Industrial applications of crustacean by-products (chitin, chitosan, and chitooligosaccharides): a review. Trends Food Sci Technol. 2016;48:40–50.
  • Muxika A, Etxabide A, Uranga J, et al. Chitosan as a bioactive polymer: processing, properties and applications. Int J Biol Macromol. 2017;105:1358–1368.
  • Hayes M, Carney B, Slater J, et al. Mining marine shellfish wastes for bioactive molecules: Chitin and chitosan – Part A: extraction methods. Biotechnol J. 2008;3:871–877.
  • Krajewska B. Diffusion of metal ions through gel chitosan membranes. React Funct Polym. 2001;47:37–47.
  • Sparks DL. Methods of soil analysis. Part 3, chemical methods. Madison (WI): Soil Science Society of America; 1996.
  • Shulman GE, Nikolsky V, Yuneva TV, et al. Fat content in Black Sea sprat as an indicator of fish food supply and ecosystem condition. Mar Ecol Progr Ser. 2005;293:201–212.
  • Kumari S, Annamareddy SHK, Abanti S, et al. Physicochemical properties and characterization of chitosan synthesized from fish scales, crab and shrimp shells. Int J Biol Macromol. 2017;104:1697–1705.
  • Pavia DL, Lampman G, Kriz GS, et al. Introduction to spectroscopy. Cengage Learning. Belmont (CA): Brooks/Cole; 2008.
  • Rumengan IFM, Suptijah P, Wullur S, et al. Characterization of chitin extracted from fish scales of marine fish species purchased from local markets in north Sulawesi, Indonesia. IOP Conference Series: Earth Environ Sci. 2017;89:012028.
  • Taghdis S, Hejazi Mehrizi M, Jalali V. Effect of oxalic and citric acids on zinc release kinetic in two calcareous soils. Commun Soil Sci Plant Anal. 2016;47:2479–2489.
  • Dang YP, Dalal RC, Edwards DG, et al. Kinetics of zinc desorption from vertisols. Soil Sci Soc Am J. 1994;58:1392–1399.
  • Nworie OE, Qin J, Lin C. Differential effects of low-molecular-weight organic acids on the mobilization of soil-borne arsenic and trace metals. Toxics. 2017;5:18.
  • Han Y, Zhang L, Gu J, et al. Citric acid and EDTA on the growth, photosynthetic properties and heavy metal accumulation of Iris halophila Pall. cultivated in Pb mine tailings. Int Biodeter Biodegr. 2018;28:15–21.
  • Larba R, Boukerche I, Alane N, et al. Citric acid as an alternative lixiviant for zinc oxide dissolution. Hydrometallurgy. 2013;134–135:117–123.
  • Taghipour M, Jalali M. Effect of low-molecular-weight organic acids on kinetics release and fractionation of phosphorus in some calcareous soils of western Iran. Environ Monit Assess. 2013;185:5471–5482.
  • Sajadi tabar S, Jalali M. Kinetics of Cd release from some contaminated calcareous soils. Nat Resour Res. 2013;22:37–44.
  • Ma H, Li X, Wei M, et al. Elucidation of the mechanisms into effects of organic acids on soil fertility, cadmium speciation and ecotoxicity in contaminated soil. Chemosphere. 2020;239:124706.
  • Zhang H, Davison W, Tye AM, et al. Kinetics of Zn and cadmium release in freshly contaminated soils. Environn Toxicol Chem. 2006;25:664.
  • Száková J, Tlustoš P, Balík J, et al. Efficiency of extractants to release As, Cd and Zn from main soil compartments. Analusis. 2000;28:808–812.
  • Saengwilai P, Meeinkuirt W, Phusantisampan T, et al. Immobilization of cadmium in contaminated soil using organic amendments and its effects on rice growth performance. Expo Health. 2020;12:295–306.
  • Chen H, Huang QY, Liu L, et al. Poultry manure compost alleviates the phytotoxicity of soil cadmium: Influence on growth of pakchoi (Brassica chinensis L.). Pedosphere. 2010;20:63–70.
  • Park JH, Choppala GK, Bolan NS, et al. Biochar reduces the bioavailability and phytotoxicity of heavy metals. Plant Soil. 2011;348:439–451.
  • Baranimotlagh M, Gholami M. Time-dependent zinc desorption in some calcareous soils of Iran. Pedosphere. 2013;23:185–193.
  • Wikiniyadhanee R, Chotpantarat S, Ong SK. Effects of kaolinite colloids on Cd²+ transport through saturated sand under varying ionic strength conditions: column experiments and modeling approaches. J Cont Hydrol. 2015;182:146–156.
  • Chotpantarat S, Kiatvarangkul N. Facilitated transport of cadmium with montmorillonite KSF colloids under different pH conditions in water-saturated sand columns: experiment and transport modeling. Water Res. 2018;146:216–231.
  • Zhang H, Lu T, Shang Z, et al. Transport of Cd2+ through saturated porous media: Insight into the effects of low-molecular-weight organic acids. Water Res. 2020;168:115182.
  • Mazinanian N, Wallinder IO, Hedberg Y. Comparison of the influence of citric acid and acetic acid as simulant for acidic food on the release of alloy constituents from stainless steel AISI 201. J Food Eng. 2015;145:51–63.

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.