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Articles

Removal of methylene blue from synthetic wastewater by the selected metallic oxides nanoparticles adsorbent: equilibrium, kinetic and thermodynamic studies

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  • Ahmad F, Daud WMAW, Ahmad MA, Radzi R. 2011. Using cocoa (Theobroma cacao) shell-based activated carbon to remove 4-nitrophenol from aqueous solution: kinetics and equilibrium studies. Chem Eng J. 178:461–467.
  • Al-Aoh HA. 2018. Adsorption performances of nickel oxide nanoparticles (NiO NPs) towards bromophenol blue dye (BB). Desal Wat Treat. 110:229–238.
  • Al-Aoh HA, Maah MJ, Yahya R, Bin Abas MR. 2013a. A comparative investigation on adsorption performances of activated carbon prepared from coconut husk fiber and commercial activated carbon for acid red 27 dye. Asian J Chem. 25(17):9582–9590.
  • Al-Aoh HA, Maah MJ, Yahya R, Bin Abas MR. 2013b. Isotherms, kinetics and thermodynamics of 4-nitrophenol adsorption on fiber-based activated carbon from coconut husks prepared under optimized conditions. Asian J Chem. 25(17):9573–9581.
  • Al-Aoh HA, Yahya R, Jamil Maah M, Radzi Bin Abas M. 2014. Adsorption of methylene blue on activated carbon fiber prepared from coconut husk: isotherm, kinetics and thermodynamics studies. Desal Wat Treat. 52(34–36):6720–6732.
  • Ansari R, Mosayebzadeh Z. 2010. Removal of basic dye methylene blue from aqueous solutions using sawdust and sawdust coated with polypyrrole. J Iran Chem Soc. 7(2):339–350.
  • Ashraf MW. 2016. Removal of methylene blue dye from wastewater by using supported liquid membrane technology. Pol J Chem. 18(2):26–30.
  • Atun G, Hisarli G, Sheldrick WS, Muhler M. 2003. Adsorptive removal of methylene blue from colored effluents on fuller’s earth. J. Colloid Interface Sci. 261(1):32–39.
  • Cairns RW, Ott E. 1933. X-ray studies of the system nickel-oxygen-water. I. Nickelous oxide and hydroxide. J Am Chem Soc. 55(2):527–533.
  • Carvalho HP, Huang J, Zhao M, Liu G, Dong L, Liu X. 2015. Improvement of methylene blue removal by electrocoagulation/banana peel adsorption coupling in a batch system. Alexandria Eng J. 54:777–786.
  • Chin LY, Pei LY, Rosli RB, Mohd-Atni NHB. 2015. Immobilization of nano-sized TiO2 on glass plate for the removal of methyl orange and methylene blue. In Hashim M, editor. Proceedings of the International Conference on Global Sustainability and Chemical Engineering (ICGSCE 2014). Vol. 287. Singapore: Springer. p. 1–13.
  • Cotoruelo LM, Marqués MD, Díaz FJ, Rodríguez-Mirasol J, Rodríguez JJ, Cordero T. 2012. Adsorbent ability of lignin-based activated carbons for the removal of p-nitrophenol from aqueous solutions. Chem Eng J. 184:176–183.
  • Darwish AAA, Rashad M, Al-Aoh HA. 2019. Methyl orange adsorption comparison on nanoparticles: isotherm, kinetics and thermodynamic studies. Dyes Pigm. 160:563–571.
  • Deng H, Lu J, Li G, Zhang G, Wang X. 2011. Adsorption of methylene blue on adsorbent materials produced from cotton stalk. Chem Eng J. 172:326–334.
  • Dhananasekaran S, Palanivel R, Pappu S. 2015. Adsorption of methylene blue, bromophenol blue and Coomassie brilliant blue by a-chitin nanoparticles. J Adv Res. 27:1–13.
  • Dod R, Banerjee G, Saini DR. 2015. Removal of methylene blue (MB) dye from water environment by processed Jowar Stalk [Sorghum bicolor (L.) Moench] adsorbent. Clean Techn Environ Policy. 17(8):2349–2359.
  • El-Maghraby A, El-Deeb HA. 2011. Removal of basic dye from aqueous solution by adsorption using rice hulls. Global NEST J. 13:90–98.
  • Fatiha M, Belkacem B. 2016. Adsorption of methylene blue from aqueous solutions using natural clay. J. Mater. Environ. Sci. 7:285–292.
  • Gao J-J, Qin Y-B, Zhou T, Cao D-D, Xu P, Hochstetter D, Wang Y-F. 2013. Adsorption of methylene blue onto activated carbon produced from tea (Camellia sinensis L.) seed shells: kinetics, equilibrium, and thermodynamics studies. J Zhejiang Univ Sci B. 14(7):650–658.
  • Hameed BH, Ahmad AA. 2009. Batch adsorption of methylene blue from aqueous solution by garlic peel, an agricultural waste biomass. J Hazard Mater. 164(2–3):870–875.
  • Hernandez JST, Muriel AA, Tabares JA, Alcáza GAP, Bolaños A. 2015. Preparation of Fe3O4 nanoparticles and removal of methylene blue through adsorption. J Phys. 614:1–4.
  • Ho YS, McKay G. 1999. Pseudo-second order model for sorption processes. Proc Biochem. 34(5):451–465.
  • Hoseini SJ, Nasrabadi H, Azizi M. 2013. Fe3O4 nanoparticles as an efficient and magnetically recoverable catalyst for Friedel-Crafts acylation reaction in solvent-free conditions. Synth Commun. 431:683–691.
  • Hu N, Liu W, Ding L, Wu Z, Wu H, Huang D, Li H, Jin L, Zheng Z. 2017. Removal of methylene blue from its aqueous solution by froth flotation: hydrophobic silica nanoparticle as a collector. J Nanopart Res. 19:46. DOI 10.1007/s11051-017-3762-5.
  • Kakhki RM, Tayebee , Ahsani RF. 2017. New and highly efficient Ag doped ZnO visible nano photocatalyst for removing of methylene blue. J Mater Sci Mater Electron. 28:5941–5952.
  • Kannan N, Sundaram MM. 2001. Kinetics and mechanism of removal of methylene blue by adsorption on various carbons – a comparative study. Dyes Pigm. 51(1):25–40.
  • Kianfar AH, Dehghani P, Momeni MM. 2016. Photo-catalytic degradation of methylene blue over nano titanium/nickel oxide prepared from supported Schiff base complex on titanium dioxide. J Mater Sci Mater Electron. 27:3368–3375.
  • Kurniawan A, Ismadji S. 2011. Potential utilization of Jatropha curcas L. Press-cake residue as new precursor for activated carbon preparation: application in methylene blue removal from aqueous solution. J Taiwan Inst Chem E. 42(5):826–836.
  • Lagergren S. 1898. Zur theorie der sogenannten adsorption gelster stoffe, Kungliga Svenska Vetenskapsakademiens. Handlingar. 24(4):1–39.
  • Li D, Yan J, Liu Z, Liu Z. 2016. Adsorption kinetic studies for removal of methylene blue using activated carbon prepared from sugar beet pulp. Int J Environ Sci Technol. 13:1815–1822.
  • Li F, Wu X, Ma S, Xu Z, Liu W, Liu F. 2009. Adsorption and desorption mechanisms of methylene blue removal with iron-oxide coated porous ceramic filter. J Water Resour Protect. 1:1–57.
  • Liu T, Li Y, Du Q, Sun J, Jiao Y, Yang G, Wang Z, Xia Y, Zhang W, Wang K, et al. 2012. Adsorption of methylene blue from aqueous solution by graphene. Colloids Surf B. 90:197–203.
  • Liu Y, Zheng Y, Wang A. 2010. Enhanced adsorption of methylene blue from aqueous solution by chitosan-g-poly (acrylic acid)/vermiculite hydrogel composites. J. Environ Sci. 22(4):486–493.
  • Mahmoud MS, Farah JY, Farrag TE. 2013. Enhanced removal of methylene blue by electrocoagulation using iron electrodes. Egypt J Pet. 22(1):211–216.
  • Mahmoud MH, Elshahawy AM, Makhlouf SA, Hamdeh HH. 2013. Mossbauer and magnetization studies of nickel ferrite nanoparticles synthesized by the microwave combustion method. J Magn Magn Mater. 343:21–26.
  • Malakootian M, Fatehizadeh A. 2010. Color removal from water by coagulation/caustic soda and lime. Iran J Environ Health Sci Eng. 7:267–272.
  • Masoumbeigi H, Rezaee A. 2015. Removal of methylene blue (MB) dye from synthetic wastewater using UV/H2O2 advanced oxidation process. J Health Policy Sustainable Health. 2:160–166.
  • Miyah Y, Lahrichi A, Idrissi M. 2016. Removal of cationic dye methylene blue from aqueous solution by adsorption onto corn cob powder calcined. J Mater Environ Sci. 7:96–104.
  • Mohammed MA, Shitu A, Ibrahim A. 2014. Removal of methylene blue using low-cost adsorbent: a review. Res J Chem Sci. 4:91–102.
  • Mustafa G, Tahir H, Sultan M, Akhtar N. 2013. Synthesis and characterization of cupric oxide (CuO) nanoparticles and their application for the removal of dyes. Afr J Biotechnol. 12:6650–6660.
  • Niggli P. 1922. Die Kristallstruktur einiger Oxyde I. Z Kristallogr. 57:253–299.
  • Oyelude EO, Applat-Takyi F. 2012. Removal of methylene blue from aqueous solution using alkali-modified malted sorghum mash. Turkish J Eng Env Sci. 36:161–169.
  • Pandit P, Basu S. 2004. Removal of ionic dyes from water by solvent extraction using reverse micelles. Environ Sci Technol. 38(8):2435–2442.
  • Pathania D, Sharma S, Singh P. 2017. Removal of methylene blue by adsorption onto activated carbon developed from Ficus carica bast. Arab J Chem. 10:S1445–S1451.
  • Pradeep Kumar BM, Shivaprasad KH, Raveendra RS, Hari Krishna R, Nagabhushana BM. 2016. Adsorption of hazardous methylene blue from aqueous solution using combustion derived CaAl2O4 nanoparticles. JMSSE. 4:492–495.
  • Rahman MA, RuhulAmin SM, ShafiqulAlam AM. 2012. Removal of methylene blue from waste water using activated carbon prepared from rice husk, Dhaka. Univ J Sci. 60:185–189.
  • Rani S, Aggarwal M, Kumar M, Sharma S, Kumar D. 2016. Removal of methylene blue and rhodamine B from water by zirconium oxide/graphene. Water Sci. 30(1):51–60.
  • Rashad M, Rüsing M, Berth G, Lischka K, Pawlis A. 2013. CuO and Co3O4 nanoparticles: synthesis, characterizations, and Raman spectroscopy. J Nanomater. 2013:1–6.
  • Rezaei M, Salem S. 2016. Photocatalytic activity enhancement of anatase–graphene nanocomposite for methylene removal: degradation and kinetics. Spectrochim Acta Part A Mol Biomol Spectrosc. 167:41–49.
  • Rong X, Qiu F, Zhang C, Fu F, Wang Y, Yang D. 2015. Adsorption–photodegradation synergetic removal of methylene blue from aqueous solution by NiO/graphene oxide nano-composite. Powder Technol. 275:322–328.
  • Salehi M, Hashemipour H, Mirzaee M. 2012. Experimental study of influencing factors and kinetics in catalytic removal of methylene blue with TiO2 nanopowder. Am J Environ Eng. 2(1):1–7.
  • Samiey B, Ashoori F. 2012. Adsorptive removal of methylene blue by agar: effects of NaCl and ethanol. Chem Cent J. 6:2–13.
  • Senthilkumaar S, Varadarajan PR, Porkodi K, Subbhuraam CV. 2005. Adsorption of methylene blue onto jute fiber carbon: kinetics and equilibrium studies. J Colloid Interface Sci. 284(1):78–82.
  • Shiue A, Ma C-M, Ruan R-T, Chang C-T. 2012. Adsorption kinetics and isotherms for the removal methyl orange from wastewaters using copper oxide catalyst prepared by the waste printed circuit boards, Sustain. Environ Res. 22:209–215.
  • Soares SF, Simões TR, Trindade T, Daniel-da-Silva AL. 2017. Highly efficient removal of dye from water using magnetic carrageenan/silica hybrid nano-adsorbents. Water Air Soil Pollut. 228(3):87.
  • Spagnoli AA, Giannakoudakis DA, Bashkova S. 2017. Adsorption of methylene blue on cashew nut shell based carbons activated with zinc chloride: the role of surface and structural parameters. J Mol Liq. 229:465–471.
  • Tang R, Dai C, Li C, Liu W, Gao S, Wang C. 2017. Removal of methylene blue from aqueous solution using agricultural residue walnut shell: equilibrium, kinetic, and thermodynamic studies. J Chem. 2017:1–10.
  • Tavakkoli H, Hamedi F. 2016. Synthesis of Gd0.5Sr0.5FeO3 perovskite-type nano-powders for adsorptive removal of MB dye from water. Res Chem Intermed. 42:3005–3027.
  • Teoh LG, Li K-D. 2015. Synthesis and characterization of NiO nanoparticles by sol gel method. Mater Trans. 5:2135–2140.
  • Theydan SK, Ahmed MJ. 2012. Adsorption of methylene blue onto biomass-based activated carbon byFeCl3 activation: equilibrium, kinetics, and thermodynamic studies. J Anal Appl Pyrol. 97:116–122.
  • Uddin MT, Rahman MA, Rukanuzzaman M, Islam MA. 2017. A potential low-cost adsorbent for the removal of cationic dyes from aqueous solutions. Appl Water Sci. 7(6):2831–2842.
  • Vargas AMM, Cazetta AL, Kunita MH, Silva TL, Almeida VC. 2011. Adsorption of methylene blue on activated carbon produced from flamboyant pods (Delonixregia): study of adsorption isotherms and kinetic models. Chem Eng J. 168(2):722–730.
  • Wang L, Li J. 2013. Removal of methylene blue from aqueous solution by adsorption onto Crofton weed stalk. BioResources. 8(2):2521–2536.
  • Wang Y, Shi L, Gao L, Wei Q, Cui L, Hu L, Yan L, Du B. 2015. The removal of lead ions from aqueous solution by using magnetic hydroxypropyl chitosan/oxidized multiwalled carbon nanotubes composites. J Colloid Interface Sci. 451:7–14.
  • Wang Y, Hu L, Zhang G, Yan T, Yan L, Wei Q, Du B. 2017. Removal of Pb(II) and methylene blue from aqueous solution by magnetic hydroxyapatite-immobilized oxidized multi-walled carbon nanotubes. J Colloid Interface Sci. 494:380–388.
  • Weber WJ, Morris JC. 1963. Kinetics of adsorption on carbon from solutions. J Sanit Eng Div Am Soc Civ Eng. 89:31–60.
  • Wu X-L, Shi Y, Zhong S, Lin H, Chen J-R. 2016. Facile synthesis of Fe3O4-graphene@mesoporous SiO2 nanocomposites for efficient removal of methylene blue. Appl Surf Sci. 378:80–86.
  • Yan T, Wang L. 2013. Adsorptive removal of methylene blue from aqueous solution by spent mushroom substrate: equilibrium, kinetics and thermodynamics. BioResources. 8(3):4722–4734.
  • Yang S-T, Chen S, Chang Y, Cao A, Liu Y, Wang H. 2011. Removal of methylene blue from aqueous solution by graphene oxide. J Colloid Interface Sci. 359(1):24–29.
  • Yao W-T, Yu S-H, Zhou Y, Jiang J, Wu Q-S, Zhang L, Jiang J. 2005. Formation of uniform CuO nanorods by spontaneous aggregation: selective synthesis of CuO, Cu2O, and Cu nanoparticles by a solid-liquid phase arc discharge process. J Phys Chem B. 109(29):14011–14016.
  • Yogesh Kumar K, Muralidhara HB, Arthoba Nayaka Y, Balasubramanyam J, Hanumanthappa H. 2013. Low-cost synthesis of metal oxide nanoparticles and their application in adsorption of commercial dye and heavy metal ion in aqueous solution. Powder Technol. 246:125–136.
  • Zhang J, Xu LJ, Zhu ZQ, Liu QJ. 2015. Synthesis and properties of (Yb, N)-TiO2 photocatalyst for degradation of methylene blue (MB) under visible light irradiation. Mater Res Bull. 70:358–364.
  • Zhang Y-R, Su P, Huang J, Wang Q-R, Zhao B-X. 2015. A magnetic nanomaterial modified with poly-lysine for efficient removal of anionic dyes from water. Chem Eng J. 262:313–318.
  • Zhao M, Tang Z, Liu P. 2008. Removal of methylene blue from aqueous solution with silica nano-sheets derived from vermiculite. J Hazard Mater. 158(1):43–51.

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