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Research Articles

Potential of rice husk ash in atrazine removal

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Pages 678-692 | Received 07 Aug 2018, Accepted 15 Feb 2019, Published online: 05 Jun 2019

References

  • Ayranci E, Hoda N. Adsorption kinetics and isotherms of pesticides onto activated carbon-cloth. Chemosphere. 2005;60:1600–1607.
  • Baghapour MA, Nasseri S, Derakhshan Z. Atrazine removal from aqueous solutions using submerged biological aerated filter. J Environ Health Sci Eng. 2013;11:6.
  • Chaparadza A, Hossenlopp JM. Adsorption kinetics, isotherms and thermodynamics of atrazine removal using a banana peel based sorbent. Water Sci Technol. 2012;65(5):940–947.
  • Sebata E, Moyo M, Guyo U, et al. Adsorptive removal of atrazine from aqueous solution using Bambara Groundnut Hulls (Vigna Subterranean). Int J Eng Res Technol. 2013;2(5):312–321.
  • Gupta VK, Jain R, Nayak A, et al. Removal of the hazardous dye—tartrazine by photodegradation on titanium dioxide surface. Mater Sci Eng C. 2011;31(5):1062–1067.
  • Mohammadi N, Khani H, Gupta VK, et al. Adsorption process of methyl orange dye onto mesoporous carbon material–kinetic and thermodynamic studies. J Colloid Interface Sci. 2011;362(2):457–462.
  • Saleh TA, Gupta VK. Functionalization of tungsten oxide into MWCNT and its application for sunlight-induced degradation of rhodamine B. J Colloid Interface Sci. 2011;362(2):337–344.
  • Saleh TA, Gupta VK. Photo-catalyzed degradation of hazardous dye methyl orange by use of a composite catalyst consisting of multi-walled carbon nanotubes and titanium dioxide. J Colloid Interface Sci. 2012;371(1):101–106.
  • Saravanan R, Joicy S, Gupta VK, et al. Visible light induced degradation of methylene blue using CeO2/V2O5 and CeO2/CuO catalysts. Mater Sci Eng C. 2013;33(8):4725–4731.
  • Saravanan R, Karthikeyan S, Gupta VK, et al. Enhanced photocatalytic activity of ZnO/CuO nanocomposite for the degradation of textile dye on visible light illumination. Mater Sci Eng C. 2013;33(1):91–98.
  • Ghaedi M, Hajjati S, Mahmudi Z, et al. Modeling of competitive ultrasonic assisted removal of the dyes – Methylene blue and Safranin-O using Fe3O4 nanoparticles. Chem Eng J. 2015;268:28–37.
  • Robati D, Mirza B, Rajabi M, et al. Removal of hazardous dyes-BR 12 and methyl orange using graphene oxide as an adsorbent from aqueous phase. Chem Eng J. 2016;284:687–697.
  • Saravanan R, Sacari E, Gracia F, et al. Conducting PANI stimulated ZnO system for visible light photocatalytic degradation of coloured dyes. J Mol Liq. 2016;221:1029–1033.
  • Gupta VK. Sharma S. Removal of zinc from aqueous solutions using Bagasse fly ash − a low cost adsorbent. Ind Eng Chem Res. 2013;52(40):14441–14448.
  • Gupta VK, Nayak A, Agarwal S. Bioadsorbents for remediation of heavy metals: current status and their future prospects. Environ Eng Res. 2015;20:001–018.
  • Saravanan R, Khan MM, Gupta VK, et al. Zno/Ag/Mn2O3 nanocomposite for visible light-induced industrial textile effluent degradation, uric acid and ascorbic acid sensing and antimicrobial activity. RSC Adv. 2015;5:34645–34651.
  • Devaraj M, Saravanan R, Deivasigamani R, et al. Fabrication of novel shape Cu and Cu/Cu2O nanoparticles modified electrode for the determination of dopamine and paracetamol. J Mol Liq. 2016;221:930–941.
  • Dada AO, Ojediran JO, Olalekan AP. Sorption of Pb2+ from aqueous solution unto Modified rice husk: isotherms studies. Adv Phys Chem. 2013;2013:6. DOI:10.1155/2013/842425.
  • Mandal A, Singh N, Purakayastha TJ. Characterization of pesticide sorption behaviour of slow pyrolysis biochars as low cost adsorbent for atrazine and imidacloprid removal. Sci Total Environ. 2017;577:376–385.
  • Rojas R, Vanderlinden E, Morillo J, et al. Characterization of sorption processes for the development of low-cost pesticide decontamination techniques. Sci Total Environ. 2014;488–489(1):124–135.
  • Mandal A, Singh N, Nain L. Agro-waste biosorbents: effect of physico-chemical properties on atrazine and imidacloprid sorption. J Environ Sci Health – Part B Pesticides Food Contam Agric Wastes. 2017;52:1–12. DOI:10.1080/03601234.2017.1331677.
  • Mahvi AH, Maleki A, Eslami A. Potential of rice husk and rice husk Ash for Phenol removal in aqueous systems. Am J Appl Sci. 2004;1(4):321–326.
  • Hamdaoui O, Naffrechoux E. Modeling of adsorption isotherms of phenol and chlorophenols onto granular activated carbon. Part II. Models with more than two parameters. J Hazard Mater. 2007;147:401–441.
  • Li SG, Xu SP, Liu SQ, et al. Fast pyrolysis of biomass in free-fall reactor for hydrogen-rich gas. Fuel Process Technol. 2004;85:1201–1211.
  • Roudani A, Mamouni R, Saffaj N, et al. Removal of Carbofuran pesticide from aqueous solution by adsorption onto animal bone meal as new low cost adsorbent. Chem Process Eng. 2014;28:32–44.
  • Zakhama S, Dhaouadi H, M’Henni F. Nonlinear modelisation of heavy metal removal from aqueous solution using Ulva lactuca algae. Bioresour Technol. 2011;102:786–796.
  • Kumar KV. Optimum sorption isotherm by linear and non-linear methods for malachite green onto lemon peel. Dyes Pigm. 2007;74:595–597.
  • Kumar KV, Porkodi K, Rocha F. Isotherms and thermodynamics by linear and non-linear regression analysis for the sorption of methylene blue onto activated carbon: comparison of various error functions. J Hazard Mater. 2008;151:794–804.
  • Armagan B, Toprak F. Optimum isotherm parameters for reactive Azo dyes onto pistachio Nut Shello: comparison of linear and non-linear methods. Pol J Environ Stud. 2013;22(4):1007–1011.
  • Mohammadnia MS, Salaryan P, Ghasemi N. The study of nonlinear isotherms for Mn (II) adsorption from aqueous solution. Int J Chem Biochem Sci. 2014;5(4):55–58.
  • Dafalla SB, Mukhtar H, Shaharun MS. Characterization of adsorbent developed from rice husk: effect of surface functional group on phenol adsorption. J Appl Sci. 2010;10(12):1060–1067.
  • Ho YS, McKay G. Sorption of dye from aqueous solution by Peat. Chem Eng J. 1998;70:115–124.
  • Rudzinski W, Pulazinski W. On the applicability of the pseudo-second order equation to represent the kinetics of adsorption at solid/solution interfaces: a theoretical analysis based on the statistical rate theory. Adsorption. 2009;15:181–192.
  • Deokar SK, Mandavgane SA. Rice husk Ash for fast removal of 2,4-dichlorophenoxyacetic acid from aqueous solution. Adsorpt Technol. 2015;33(5):429–440.
  • Alan JB, Dikshit AK, Padhyav B. Efficacy of adsorbents for 2, 4-D and atrazine removal from water environment. Glob Nest Int J. 2000;2:139–148.
  • Lim YN, Ghazaly Shabaan MD, Yin CY. Removal of endosulfan from water using oil palm shell activated carbon and rice husk ash. J Oil Palm Res. 2008;20:527–532.
  • Salvestrini S, Sagliano P, Iovino P, et al. Atrazine adsorption by acid-activated zeolite-rich tuffs. Appl Clay Sci. 2010;49(3):330–335.
  • Jamil TS, Gad-Allah TA, Ibrahim HS, et al. Adsorption and isothermal models of atrazine by zeolite prepared from Egyptian kaolin. Solid State Sci. 2011;13(1):198–203.
  • Coldebella PF, Klen MRF, Nishi L, et al. Potential effect of chemical and thermal treatment on the kinetics, equilibrium, and Thermodynamic studies for atrazine biosorption by the Moringa oleifera pods. Can J Chem Eng. 2016. DOI:10.1002/cjce.22756.
  • Saha A, Bhaduri D, Pipariya A, et al. Linear and nonlinear sorption modelling for adsorption of atrazine onto activated peanut husk. Environ Prog Sustain Energy. 2016;36(2). DOI:10.1002/ep.

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