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Preparation and uranium (VI) biosorption for tri-amidoxime modified marine fungus material

  • Environmental Toxicology and Biogeochemistry of Ecosystems
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Abstract

The preparation, characterization, and uranium (VI) adsorption properties of tri-amidoxime modified marine fungus material (ZZF51-GPTS-EDA-AM/ZGEA) were investigated in this study. ZGEA was synthesized by four steps of condensation, nucleophilic substitution, electrophilic addition, and nitrile amidoxime and characterized by a series of methods containing FT-IR, TGA, SEM, and BET. Contrasted with uranium (VI) adsorption capacity of original fungus mycelium (15.46 mg g−1) that of the functional material (584.60 mg g−1) was great under the optimal factors such as uranium (VI) ion concentration 40 mg L−1, solid-liquid ratio 50 mg L−1, pH of solution 5.5, and reaction time 120 min. The above data were obtained by the orthogonal method. The cyclic tests showed that ZGEA had good regeneration performance, and it could be recycled at least five adsorption-desorption processes. The thermodynamic experimental adsorption result fitted Langmuir and Freundlich models, which explored monolayer and double layers of uranium (VI) adsorption mechanism, and the kinetic adsorption results were in better consistent with the pseudo-second-order and pseudo-first-order dynamic models (R2 > 0.999).

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References

  • Alavinikje MM, Zahra MT (2010) Synthesis and characterization of waterborne polyurethane-chitosan nanocomposites. J Macromol Sci-pol R 49:812–817

    Google Scholar 

  • Asif M, Muneer T (2007) Energy supply, its demand and security issues for developed and emerging economies. Renew Sust Energ Rev 11:1388–1413

    Article  Google Scholar 

  • Awual MR (2016a) Assessing of lead(III) capturing from contaminated wastewater using ligand doped conjugate adsorbent. Chem Eng J 289:65–73

    Article  CAS  Google Scholar 

  • Awual MR (2016b) Ring size dependent crown ether based mesoporous adsorbent for high cesium adsorption from wastewater. Chem Eng J 303:539–546

    Article  CAS  Google Scholar 

  • Bergmann M, Sobral O, Pratas J, Graça MAS (2018) Uranium toxicity to aquatic invertebrates: a laboratory assay. Environ Pollut 239:359–366

    Article  CAS  Google Scholar 

  • Chen F, Tan N, Long W, Yang SK, She ZG, Lin YC (2014) Enhancement of uranium(VI) biosorption by chemically modified marine-derived mangrove endophytic fungus Fusarium sp. #ZZF51. J Radioanal Nucl Ch 299:193–201

    Article  CAS  Google Scholar 

  • Chen S, Wei S, Feng Y, Wang H (2009) Kinetic and thermodynamic studies of adsorption of Cu2+ and Pb2+ onto amidoximated bacterial cellulose. Polym Bull 63:283–297

    Article  CAS  Google Scholar 

  • Choudharyab BC, DebajyotiPaulbc, U.Borsea A, J.Garolead D (2018) Surface functionalized biomass for adsorption and recovery of gold from electronic scrap and refinery wastewater. Sep Purif Technol 195: 260–270

  • Devi AP, Mishra PM (2019) Biosorption of dysprosium (III) using raw and surface-modified bark powder of Mangifera indica: isotherm, kinetic and thermodynamic studies. Environ Sci Pollut R 26:6545–6556

    Article  CAS  Google Scholar 

  • Dittmar M (2012) Nuclear energy: status and future limitations. Energy 37:35–40

    Article  Google Scholar 

  • El-Said GF, El-Sadaawy MM, Aly-Eldeen MA (2018) Adsorption isotherms and kinetic studies for the defluoridation from aqueous solution using eco-friendly raw marine green algae, Ulva lactuca. Environ Monit Assess 190:14

    Article  Google Scholar 

  • Garg U, Kaur MP, Jawa GK, Sud D, Garg VK (2008) Removal of cadmium (II) from aqueous solutions by adsorption on agricultural waste biomass. J Hazard Mater 154:1149–1157

    Article  CAS  Google Scholar 

  • Hameed AHAE, Eweda WE, Abou-Taleb KAA, Mira HI (2015) Biosorption of uranium and heavy metals using some local fungi isolated from phosphatic fertilizers. Ann Agr Sci 60:345–351

    Article  Google Scholar 

  • He DX, Tan N, Luo XM, Yang XC, Ji K (2019) Preparation, uranium (VI) absorption and reuseability of marine fungus mycelium modified by the bis-amidoxime-based groups. Radiochim Acta 108(1): 37-49.

  • Ladshaw AP, Ivanov AS, Das S, Bryantsev VS, Tsouris C, Yiacoumi S (2018) First-principles integrated adsorption modeling for selective capture of uranium from seawater by polyamidoxime sorbent materials. Acs Appl Mater Inter 10:12580–12593

    Article  CAS  Google Scholar 

  • Le L, Nan H, Ding D, Xin X, Wang Y, Xue J, Hui Z, Yan T (2015) Adsorption and recovery of U(VI) from low concentration uranium solution by amidoxime modified Aspergillus niger. RSC Adv 5:65827–65839

    Article  Google Scholar 

  • Liu Y, Cao X, Hua R, Wang Y, Liu Y, Pang C, Wang Y (2010) Selective adsorption of uranyl ion on ion-imprinted chitosan/PVA cross-linked hydrogel. Hydrometallurgy 104:150–155

    Article  CAS  Google Scholar 

  • Meng J, Lin X, Li H, Zhang Y, Zhou J, Chen Y, Shang R, Luo X (2019) Adsorption capacity of kelp-like electrospun nanofibers immobilized with bayberry tannin for uranium(VI) extraction from seawater. RSC Adv 9:8091–8103

    Article  CAS  Google Scholar 

  • Pavlakis N, ., Pollock CA, Mclean G, ., Bartrop R, . (1996) Deliberate overdose of uranium: toxicity and treatment. Nephron 72: 313–317

    Article  CAS  Google Scholar 

  • Qin L, Feng L, Li C, Fan Z, Zhang G, Shen C, Meng Q (2019) Amination/oxidization dual-modification of waste ginkgo shells as bio-adsorbents for copper ion removal. J Clean Prod 228:112–123

    Article  CAS  Google Scholar 

  • Sarafraz H, Minuchehr A, Alahyarizadeh G, Rahimi Z (2017) Synthesis of enhanced phosphonic functional groups mesoporous silica for uranium selective adsorption from aqueous solutions. Sci Rep-uk 7:11675

    Article  CAS  Google Scholar 

  • Song YJ, Zhang XH, Ye GD, Xu JJ, Jiang MJ (2017) Water-resistant modification of poly(vinyl alcohol)/polyamidoxime chelating fibers prepared by emulsion spinning and their adsorption properties. J Appl Polym Sci 134:25

    Google Scholar 

  • Su SZ, Liu Q, Liu JY (2018) Functionalized sugarcane bagasse for U(VI) adsorption from acid and alkaline conditions. Sci Rep-uk 8:793

    Article  Google Scholar 

  • Suksabye P, Thiravetyan P (2012) Cr(VI) adsorption from electroplating plating wastewater by chemically modified coir pith. J Environ Manag 102:1–8

    Article  CAS  Google Scholar 

  • Sun Y, Li X, Cui P, Sun Y (2018) Plasma-grafted amidoxime/metal-organic framework composites for the selective sequestration of U(VI). Environ Sci-nano 5(8):2000–2008

    Article  Google Scholar 

  • Swain KK, Mishra PM, Devi AP (2018) Biosorption of praseodymium (III) using Terminalia arjuna bark powder in batch systems: isotherm and kinetic studies. Water Sci Technol 77:727–738

    Article  CAS  Google Scholar 

  • Vasconcelos HL, Fávere VT, Gonçalves NS, Laranjeira MCM (2007) Chitosan modified with reactive blue 2 dye on adsorption equilibrium of Cu(II) and Ni(II) ions. React Funct Polym 67:1052–1060

    Article  CAS  Google Scholar 

  • Wang J, Yu HY, Li JF (2015) Treatment of Cr(VI) wastewater with modified coal fly ash. Appl Mech Mater 768:561–566

    Article  Google Scholar 

  • Wen J, Li Q, Hao L, Min C, Sheng H, Cheng H (2018) Nano TiO2 imparts amidoximated wool fibers with good antibacterial activity and adsorption capacity for uranium(VI) recovery. Ind Eng Chem Res 57:1826–1833

    Article  CAS  Google Scholar 

  • Xu C, Wang J, Yang T, Chen X, Liu X, Ding X (2015) Adsorption of uranium by amidoximated chitosan-grafted polyacrylonitrile, using response surface methodology. Carbohyd Polym 121:79–85

    Article  CAS  Google Scholar 

  • Xu L, Zhang D, Ma F, Zhang J, Wang S (2019) Nano-MOF+ technique for efficient uranyl remediation. Acs Appl Mater Inter 11(24)

  • Yakout SM, Hassan HS (2014) Adsorption characteristics of sol gel-derived zirconia for cesium ions from aqueous solutions. Molecules 19:9160–9172

    Article  Google Scholar 

  • Yan T, Le L, Hui Z, Ding D, Dai Z, Xue J, Liu J, Nan H, Wang Y (2018) Adsorption and recovery of U(VI) from actual acid radioactive wastewater with low uranium concentration using thioacetamide modified activated carbon from liquorice residue. J Radioanal Nucl Ch 317:1–14

    Article  Google Scholar 

  • Yang HB, Tan N, WU FJ, Liu HJ, Sun M, She ZG, Lin YC (2012) Biosorption of uranium(VI) by a mangrove endophytic fungus Fusarium sp. #ZZF51 from the South China Sea. J Radioanal Nucl Ch 292:1011–1016

    Article  CAS  Google Scholar 

  • Yang P, Chen R, Liu Q (2019) The efficient immobilization of uranium(VI) by modified dendritic fibrous nanosilica (DFNS) using mussel bioglue. Inorg Chem Front 6:745–755

    Google Scholar 

  • Yang ZK, Wang YT, Tang YR (2000) Synthesis and adsorption properties for metal ions of mesocyclic diamine-grafted chitosan-crown ether. J Appl Polym Sci 75:1255–1260

    Article  CAS  Google Scholar 

  • Yao L, Cui WQ, Li L, Zong RL, Yao WQ, Liang YH, Zhu YF (2016) Removal of Cr(VI) by 3D TiO2 -graphene hydrogel via adsorption enriched with photocatalytic reduction. Appl Catal B-Environ 199:412–423

    Article  Google Scholar 

  • Zhao C, Liu J, Tu H, Li F, Li X, Yang J, Liao J, Yang Y, Liu N, Sun Q (2016) Characteristics of uranium biosorption from aqueous solutions on fungus Pleurotus ostreatus. Environ Sci Pollut R 23:24846–24856

    Article  CAS  Google Scholar 

  • Zhu WK, Yi L, Li C, Li J (2018) Bioassembly of fungal hyphae/carbon nanotubes composite as a versatile adsorbent for water pollution control. Chem Eng J 339:214–222

    Article  CAS  Google Scholar 

Download references

Funding

The authors are fully grateful for the financial support of the Scientific Research Project of Education Department of Hunan (No.17C1359) and the Research Learning and Innovative Experimental Program of Hunan/South China University (S201910555016, X2019070, X2019071).

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Correspondence to Ni Tan.

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Responsible editor: Tito Roberto Cadaval Jr

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Han, J., Hu, L., He, L. et al. Preparation and uranium (VI) biosorption for tri-amidoxime modified marine fungus material. Environ Sci Pollut Res 27, 37313–37323 (2020). https://doi.org/10.1007/s11356-020-07746-z

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  • DOI: https://doi.org/10.1007/s11356-020-07746-z

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