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Articles

Preparation and characterization of graphene oxide/O-carboxymethyl chitosan (GO/CMC) composite and its unsymmetrical dimethylhydrazine (UDMH) adsorption performance from wastewater

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Pages 1493-1504 | Received 24 Jul 2021, Accepted 30 Oct 2021, Published online: 28 Nov 2021

References

  • Keshavarz MH, Ramadan A, Mousaviazar A, et al. Reducing dangerous effects of unsymmetrical dimethylhydrazine as a liquid propellant by addition of hydroxyethylhydrazine—part I: physical properties. J Energ Mater. 2011;29:46–60.
  • Carlsen L, Kenesova OA, Batyrbekova SE. A preliminary assessment of the potential environmental and human health impact of unsymmetrical dimethylhydrazine as a result of space activities. Chemosphere. 2007;67:1108–1116.
  • Torabi Angaji M, Ghiaee R. Decontamination of unsymmetrical dimethylhydrazine waste water by hydrodynamic cavitation-induced advanced Fenton process. Ultrason Sonochem. 2015;23:257–265.
  • Xiaochen W, Pengyi Z. Degradation of unsymmetrical dimethylhydrazine by O3/VUV. Chinese J. Environ. Eng. 2009;3:57–61.
  • Lunn G, Sansone EB. Oxidation of 1,1-dimethylhydrazine (UDMH) in aqueous solution with air and hydrogen peroxide. Chemosphere. 1994;29:1577–1590.
  • Pestunova OP, Elizarova GL, Ismagilov ZR, et al. Detoxication of water containing 1,1-dimethylhydrazine by catalytic oxidation with dioxygen and hydrogen peroxide over Cu- and Fe-containing catalysts. Catal Today. 2002;75:219–225.
  • Malakootian M, Shahesmaeili A, Faraji M, et al. Advanced oxidation processes for the removal of organophosphorus pesticides in aqueous matrices: A systematic review and meta-analysis. Process Saf Environ Prot. 2020;134:292–307.
  • Malakootian M, Yousefi N, Fatehizadeh A, et al. Nickel (II) removal from industrial plating effluent by fenton process. Environ. Eng. Manag. J. 2015;14:837–842.
  • Malakootian M, Khatami M, Mahdizadeh H, et al. A study on the photocatalytic degradation of p -nitroaniline on glass plates by thermo-immobilized ZnO nanoparticle. Inorg Nano-Metal Chem. 2020;50:124–135.
  • Torabi Angaji M, Ghiaee R. Cavitational decontamination of unsymmetrical dimethylhydrazine waste water. J. Taiwan Inst of Chem Eng. 2015;49:142–147.
  • Malakootian M, Mahdizadeh H, Nasiri A, et al. Investigation of the efficiency of microbial desalination cell in removal of arsenic from aqueous solutions. Desalination. 2018;438:19–23.
  • Mu X, Wang X, Zhang Y, et al. Major products and their formation and transformation mechanism through degrading UDMH wastewater via DBD low temperature plasma. Environ Technol. 2020:1–12.
  • Bilińska L, Gmurek M, Ledakowicz S. Comparison between industrial and simulated textile wastewater treatment by AOPs – biodegradability, toxicity and cost assessment. Chem Eng J. 2016;306:550–559.
  • Junyong C, Yongmei H, Yan L, et al. Magnetic graphene oxides as highly effective adsorbents for rapid removal of a cationic dye rhodamine B from aqueous solutions. RSC Adv. 2013;3:7254.
  • Yang Z, Liu X, Liu X, et al. Preparation of β-cyclodextrin/graphene oxide and its adsorption properties for methylene blue. Colloids Surf B Biointerfaces. 2021;200:111605.
  • Wang L. Removal of disperse Red dye by bamboo-based activated carbon: optimisation, kinetics and equilibrium. Environ Sci Pollut Res Int. 2013;20:4635–4646.
  • Wöhrle D, Schulz-ekloff G. Molecular sieve encapsulated organic dyes and metal chelates. Adv Mater. 1994;6:875–880.
  • Madima N, Mishra SB, Inamuddin I, et al. Carbon-based nanomaterials for remediation of organic and inorganic pollutants from wastewater. A review. Environ Chem Lett. 2020;18:1169–1191.
  • Han R, Zou W, Yu W, et al. Biosorption of methylene blue from aqueous solution by fallen phoenix tree's leaves. J Hazard Mater. 2007;141:156–162.
  • Mahvi AH, Malakootian M, Heidari MR. Comparison of polyaluminum silicate chloride and electrocoagulation process, in natural organic matter removal from surface water in Ghochan, Iran. J Water Chem Technol. 2011;33:377–385.
  • Li C, Wang X, Meng D, et al. Facile synthesis of low-cost magnetic biosorbent from peach gum polysaccharide for selective and efficient removal of cationic dyes. Int J Biol Macromol. 2018;107:1871–1878.
  • Saheed IO, Da Oh W, Suah FBM. Chitosan modifications for adsorption of pollutants - A review. J Hazard Mater. 2021;408:124889.
  • Lu X, Xue JQ, Wang YJ, et al. Theoretical studies on the chemical structure of carboxymethyl chitosan. AMR. 2010;160-162:1822–1827.
  • Lei C, Wen F, Chen J, et al. Mussel-inspired synthesis of magnetic carboxymethyl chitosan aerogel for removal cationic and anionic dyes from aqueous solution. Polymer (Guildf). 2021;213:123316.
  • Huang Q, Li G, Chen M, et al. Graphene oxide functionalized O-(carboxymethyl)-chitosan membranes: fabrication using dialysis and applications in water purification. Colloids Surf, A. 2018;554:27–33.
  • Kyzas GZ, Deliyanni EA, Matis KA. Graphene oxide and its application as an adsorbent for wastewater treatment. J Chem Technol Biotechnol. 2014;89:196–205.
  • Yang X, Tu Y, Li L, et al. Well-dispersed chitosan/graphene oxide nanocomposites. ACS Appl Mater Interfaces. 2010;2:1707–1713.
  • Travlou NA, Kyzas GZ, Lazaridis NK, et al. Functionalization of graphite oxide with magnetic chitosan for the preparation of a nanocomposite dye adsorbent. Langmuir. 2013;29:1657–1668.
  • Hummers WS, Offeman RE. Preparation of graphitic oxide. J Am Chem Soc. 1958;80:1339.
  • Sun S, Wang A. Adsorption kinetics of Cu(II) ions using N,O-carboxymethyl-chitosan. J Hazard Mater. 2006;131:103–111.
  • Zhou F, Ren X. Reversible photochromic photocatalyst Bi2O3/TiO2/Al2O3 with enhanced visible photoactivity: application toward UDMH degradation in wastewater. J Environ Sci Health A Tox Hazard Subst Environ Eng. 2020;55:239–255.
  • Han Y, Lu Y. Characterization and electrical properties of conductive polymer/colloidal graphite oxide nanocomposites. Compos Sci Technol. 2009;69:1231–1237.
  • Kong Q, Preis S, Li L, et al. Graphene oxide-terminated hyperbranched amino polymer-carboxymethyl cellulose ternary nanocomposite for efficient removal of heavy metals from aqueous solutions. Int J Biol Macromol. 2020;149:581–592.
  • Ghislandi M, Tkalya E, Alekseev A, et al. Electrical conductive behavior of polymer composites prepared with aqueous graphene dispersions. Appl Mater Today. 2015;1:88–94.
  • Seredych M, Pietrzak R, Bandosz TJ. Role of graphite oxide (GO) and polyaniline (PANI) in NO 2 reduction on GO-PANI composites. Ind. Eng. Chem. Res. 2007;46:6925–6935.
  • Saeed A, Sharif M, Iqbal M. Application potential of grapefruit peel as dye sorbent: kinetics, equilibrium and mechanism of crystal violet adsorption. J Hazard Mater. 2010;179:564–572.
  • Bezerra de Araujo CM, Filipe Oliveira do Nascimento G, Da Rodrigues Bezerra Costa G, et al. Adsorptive removal of dye from real textile wastewater using graphene oxide produced via modifications of hummers method. Chem Eng Commun. 2019;206:1375–1387.
  • Liu C, Bai R, Nan L. Sodium tripolyphosphate (TPP) crosslinked chitosan membranes and application in humic acid removal. 2004:5561–5574.
  • Monash P, Pugazhenthi G. Adsorption of crystal violet dye from aqueous solution using mesoporous materials synthesized at room temperature. Adsorption. 2009;15:390–405.
  • Huang D, Liu X, Wang X, et al. Investigation on the compositions of unsymmetrical dimethylhydrazine treatment with different oxidants using solid-phase micro-extraction-gas chromatography-mass spectrometer. R Soc Open Sci. 2019;6:190263.
  • Zeng G, Liu X, Liu M, et al. Facile preparation of carbon nanotubes based carboxymethyl chitosan nanocomposites through combination of mussel inspired chemistry and Michael addition reaction: Characterization and improved Cu2+ removal capability. J. Taiwan Inst Chem Eng. 2016;68:446–454.
  • Zare EN, Lakouraj MM, Kasirian N. Development of effective nano-biosorbent based on poly m-phenylenediamine grafted dextrin for removal of Pb (II) and methylene blue from water. Carbohydr Polym. 2018;201:539–548.
  • Da Pang, Wang C-C, Wang P, et al. Superior removal of inorganic and organic arsenic pollutants from water with MIL-88A(Fe) decorated on cotton fibers. Chemosphere. 2020;254:126829.
  • Anirudhan TS, Rijith S. Synthesis and characterization of carboxyl terminated poly(methacrylic acid) grafted chitosan/bentonite composite and its application for the recovery of uranium(VI) from aqueous media. J Environ Radioact. 2012;106:8–19.
  • Mohammadi Galangash M, Mohaghegh Montazeri M, Ghavidast A, et al. Synthesis of carboxyl-functionalized magnetic nanoparticles for adsorption of malachite Green from water: kinetics and thermodynamics studies. J. Chin. Chem. Soc. 2018;65:940–950.
  • Huang Y, Jia Y, Hou R, et al. Photocatalytic degradation of unsymmetrical dimethylhydrazine on TiO 2 /SBA-15 under 185/254 nm vacuum-ultraviolet. RSC Adv. 2021;11:24172–24182.
  • Zhang Y, Li Q, Gao Q, et al. Preparation of Ag/β-cyclodextrin co-doped TiO2 floating photocatalytic membrane for dynamic adsorption and photoactivity under visible light. Appl Catal, B. 2020;267:118715.
  • Zarei AR, Pedram A, Rezaeivahidian H. Adsorption of 1,1-dimethylhydrazine (UDMH) from aqueous solution using magnetic carbon nanocomposite: kinetic and thermodynamic study. Desalin Water Treat. 2016;57:18906–18914.
  • Qin YM, Huang LQ. The preparation and characterization of carboxymethyl chitosan wound dressings. AMR. 2011;308-310:465–468.
  • Sirajudheen P, Nikitha MR, Karthikeyan P, et al. Perceptive removal of toxic azo dyes from water using magnetic Fe3O4 reinforced graphene oxide–carboxymethyl cellulose recyclable composite: adsorption investigation of parametric studies and their mechanisms. Surf Interfaces. 2020;21:100648.

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