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Research Article

Reusability of brilliant green dye contaminated wastewater using corncob biochar and Brevibacillus parabrevis: hybrid treatment and kinetic studies

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Pages 743-758 | Received 16 Feb 2020, Accepted 24 Jun 2020, Published online: 07 Jul 2020

References

  • Ramírez Calderón OA, Abdeldayem OM, Pugazhendhi A, et al. Current updates and perspectives of biosorption technology: an alternative for the removal of heavy metals from wastewater. Curr Pollut Rep. 2020;6:8–27.
  • Secondes MFN, Naddeo V, Belgiorno V, et al. Removal of emerging contaminants by simultaneous application of membrane ultrafiltration, activated carbon adsorption, and ultrasound irradiation. J Hazard Mater. 2014;264:342–349.
  • Qamruzzaman NA. Degradation of acephate by colloidal manganese dioxide in the absence and presence of surfactants. Desalin Water Treat. 2015;55:2155–2164.
  • Tripathi R, Gupta A, IS T. An integrated approach for phycoremediation of wastewater and sustainable biodiesel production by green microalgae, Scenedesmus sp. ISTGA1. Renewable Energy. 2019;135:617–625.
  • Wu Z, Zhong H, Yuan X, et al. Adsorptive removal of methylene blue by rhamnolipid-functionalized graphene oxide from wastewater. Water Res. 2014;67:330–344.
  • Kumar N, Sinha S, Mehrotra T, et al. Biodecolorization of azo dye Acid Black 24 by Bacillus pseudomycoides: process optimization using Box Behnken design model and toxicity assessment. Bioresour Technol Rep. 2019;8(100311):1–11.
  • Shafqat M, Khalid A, Mahmood T, et al. Evaluation of bacteria isolated from textile wastewater and rhizosphere to simultaneously degrade azo dyes and promote plant growth. J Chem Technol Biotechnol. 2017;92:2760–2768.
  • Bruschweiler BJ, Merlot C. Azo dyes in clothing textiles can be cleaved into a series of mutagenic aromatic amines which are not regulated yet. Regul Toxicol Pharmacol. 2017;88:214–226.
  • Bharathi KS, Ramesh SPT. Fixed-bed column studies on biosorption of crystal violet from aqueous solution by Citrullus lanatus rind and Cyperus rotundus. Appl Water Sci. 2013;3:673–687.
  • Ahmed T, Imdad S, Yaldram K, et al. Emerging nanotechnology-based methods for water purification: a review. Desalin Water Treat. 2014;52:4089–4101.
  • Zaman A, Das P, Banerjee P. Biosorption of dye molecules. In: Rathoure AK, Dhatwalia VK, Global IGI, editors; 2016. p. 51–74.
  • Deshannavar UB, Ratnamala GM, Kalburgi PB, et al. Optimization, kinetic and equilibrium studies of disperse yellow 22 dye removal from aqueous solutions using Malaysian teak wood sawdust as adsorbent. Indian Chem Eng. 2016;58(1):12–28.
  • Nasar A, Shakoor S. Remediation of dyes from industrial wastewater using low-cost adsorbents. In: Inamuddin, Al-Ahmed A, editors. Applications of Adsorption and Ion Exchange Chromatography in Waste Water Treatment. Materials Research Forum; 2017. p. 1–33.
  • Y S C, J Y S, Lee H, et al. Decolorization and detoxification of wastewater containing industrial dyes by Bjerkandera adusta KUC9065. Water Air Soil Pollut. 2014;225(1801):1–10.
  • Nandi BK, Goswami A, Purkait MK. Adsorption characteristics of brilliant green dye on kaolin, J. Hazard Mater. 2009;161:387–395.
  • Pohanish RP. Sittig’s Handbook of Toxic and Hazardous Chemicals and Carcinogens, sixth ed. Waltham: William Andrew; 2012.
  • Roy K, Verma KM, Vikrant K, et al. Removal of patent blue (V) dye using Indian bael shell biochar: characterization, application and kinetic studies. Sustainability. 2018;10(8):2669.
  • Lin SH, Lin CM. Treatment of textile waste effluents by ozonation and chemical coagulation. Water Res. 1993;27:1743–1748.
  • Chen X, Chen G, Yue PL. Novel electrode system for electroflotation of wastewater. Environ Sci Technol. 2002;36:778–783.
  • Wang A, Qu J, Liu H, et al. Degradation of azo dye acid red 14 in aqueous solution by electrokinetic and electrooxidation process. Chemosphere. 2004;55:1189–1196.
  • Ahmad AL, Tan LS, Shukor SRA. Dimethoate and atrazine retention from aqueous solution by nanofiltration membranes. J Hazard Mater. 2008;151:71–77.
  • Greenlee LF, Lawler DF, Freeman BD, et al. Reverse osmosis desalination: water sources, technology, and today’s challenges. Water Res. 2009;43:2317–2348.
  • Butani SA, Mane SJ. Coagulation/flocculation process for cationic, anionic dye removal using water treatment residuals – a review. Int J Sci Technol Manag. 2017;6(4):1–5.
  • Anastopoulos I, Bhatnagar A, B H H, et al. A review on waste-derived adsorbents from sugar industry for pollutant removal in water and wastewater. J Mol Liq. 2017;240:179–188.
  • Kumar M, Giri BS, K H K, et al. Performance of a biofilter with compost and activated carbon-based packing material for gas-phase toluene removal under extremely high loading rates Bioresource. Technol. 2019;285:121317.
  • Al-Sakkari EG, Abdeldayem OM, Genina EE, et al. New alginate-based interpenetrating polymer networks for water treatment: A response surface methodology-based optimization study. Int J Biol Macromol. 2020;155:772–785.
  • El Haddad M, Regti A, Laamari MR, et al. Calcined mussel shells as a new and eco-friendly biosorbent to remove textile dyes from aqueous solutions. J Taiwan Inst Chem Eng. 2014;45:533–540.
  • Guerrero-Coronilla I, Morales-Barrera L, Cristiani-Urbina E. Kinetic, isotherm and thermodynamic studies of amaranth dye biosorption from aqueous solution onto water hyacinth leaves. J Environ Manage. 2015;152:99–108.
  • Deaconu M, Senin R, Stoica R, et al. Adsorption decolorization technique of textile/leather – dye containing effluents. Int J Waste Resour. 2016;6(2):1–7.
  • Aranda-García E, Cristiani-Urbina E. Effect of pH on hexavalent and total chromium removal from aqueous solutions by avocado shell using batch and continuous systems. Environ Sci Pollut Res. 2018;26(4):3157–3173.
  • Al-Sakkari EG, Fouad M. Waste to Energy Trends and Prospects Waste-to-Energy Trends and Prospects: A Review. In: Ghosh S, editor. Waste Management and Resource Efficiency. Singapore: Springer; 2019. p. 673–684.
  • Asadullah M, Asaduzzaman M, Kabir MS, et al. Chemical and structural evaluation of activated carbon prepared from jute sticks for Brilliant Green dye removal from aqueous solution. J Hazard Mater. 2010;174(1–3):437–443.
  • Rehman R, Abbas A, Ayub A, et al. Comparative study of brilliant green dye adsorption from water by radish peels, jamun stem and coal. E. J. Environ. Agri. Food Chem. 2011;10:2531–2543.
  • Yakout SM, Daifullah AAM, El-Reefy SA. Adsorption of naphthalene, phenanthrene and pyrene from aqueous solution using low-cost activated carbon derived from agricultural wastes. Adsorp Sci Technol. 2013;31(4):293–302.
  • Pirbazari AE, Saberikhah E. Fe3O4- wheat straw: preparation, characterization and its application for methylene blue adsorption. Water Res Ind. 2014;7-8:23–37.
  • de Carvalho HP, Huang J, Zhao M, et al. Improvement of methylene blue removal by electrocoagulation/banana peel adsorption coupling in a batch system. Alexandria Eng J. 2015;54:777–786.
  • Lonappan L, Rouissi T, Das RK, et al. Adsorption of methylene blue on biochar microparticles derived from different waste materials. Waste Manage. 2016;49:537–544.
  • Yadav OP, Hossain F, Karjagi CG, et al. Genetic improvement of maize in India – retrospect and prospects. Agric Res. 2015;4:325–338.
  • El-Sayed G, Yehia MM, Asaad AA. Assessment of activated carbon prepared from corncob by chemical activation with phosphoric acid. Water Res Ind. 2014;7-8:66–75.
  • Vafakhah S, Bahrololoom ME, Bazarganlari Dan R, et al. Removal of copper ions from electroplating effluent solutions with native corn cob and corn stalk and chemically modified corn stalk. J Environ Chem Eng. 2014;2:356–361.
  • Tang S, Chen Y, Xie R, et al. Preparation of activated carbon from corn cob and its adsorption behavior on Cr(VI) removal. Water Sci Technol. 2016;73:2654–2661.
  • Rathour R, Gupta J, Tyagi B, et al. . Biodegradation of pyrene in soil microcosm by Shewanella sp. ISTPL2, a psychrophilic, alkalophilic and halophilic bacterium. Bioresour. Technol Rep. 2018;4:129–136.
  • Dutta S, Hossain MD, Hassan MM, et al. Decolourization of two industrial dyes by bacteria from paper and pulp mill effluents. Int Res J Biol Sci. 2014;3(12):51–55.
  • Giri BS, Goswami M, Singh RS. Review on application of agro-waste biomass biochar for adsorption and bioremediation dye. Biomed J Sci Technol Res. 2017;1(7):1–3.
  • Joint Committee on Powder Diffraction Standards. International Centre for Diffraction Data. Newt. Square, PA, Card; 1987. p. 25–1280.
  • Rivera-Utrilla J, Bautista-Toledo I, Ferro-Garc´ıa MA, et al. Activated carbon surface modifications by adsorption of bacteria and their effect on aqueous lead adsorption. J Chem Technol Biotechnol. 2001;76(12):1209–1215.
  • Sivarajasekar N, Baskar R. Adsorption of basic red 9 on activated waste Gossypium hirsutum seeds: process modeling, analysis and optimization using statistical design. J Ind Eng Chem. 2014b;20:2699–2709.
  • RK S, Giri BS, Geed SR, et al. Combination of UV-Fenton oxidation process with biological technique for treatment of polycyclic aromatic hydrocarbons using Pseudomonas pseudoalcaligenes NRSS3 isolated from petroleum contaminated site. Indian J Experimental Biol. 2019;56(7):460–469.
  • Ho YS, Mckay G. Pseudo-second order model for sorption processes. Process Biochem. 1999;34(5):451–465.
  • Monod J. The growth of bacterial cultures. Annu Rev Microbiol. 1949;3:371–394.
  • Bharti V, Shahi A, Geed SR, et al. Biodegradation of reactive orange 16 (RO-16) dye in packed bed bioreactor using seeds of Ashoka and Casuarina as packing medium. Indian J Biotechnol. 2017;16(2):216–221.
  • Nwadiogbu JO, Ajiwe VIE, Okoye PAC. Removal of crude oil from aqueous medium by sorption on hydrophobic corncobs: equilibrium and kinetics studies. J Taibah Univ Sci. 2016;10:56–63.
  • Kim SW, Koo BS, Ryu JW, et al. Bio-oil from the pyrolysis of palm and Jatropha wastes in a fluidized bed. Fuel Process Technol. 2013;108:18–124.
  • Haddad E, Mamouni R, Saffaj N, et al. Removal of a cationic dye-basic red 12 from aqueous solution by adsorption onto animal bone meal. J Assoc Arab Univ Basic Appl Sci. 2018;12(1):48–54.
  • Gao J, Kong D, Wang Y, et al. Production of mesoporous activated carbon from tea fruit peel residues and its evaluation of methylene blue removal from Aqueous Solutions. Bio, Resour. 2013;8:2145–2160.
  • Anbia M, Salehi S. Removal of acid dyes from aqueous media by adsorption onto amino-functionalized nanoporous silica SBA-3. Dyes Pigm. 2012;94(1):1–9.
  • Mane VS, Mall ID, Srivastava VC. Kinetic and equilibrium isotherm studies for the adsorptive removal of Brilliant Green dye from aqueous solution by rice husk ash, J. Environ Manage. 2007;84:390–400.
  • Tavlieva MP, Genieva SD, Georgieva VG, et al. Kinetic study of brilliant green adsorption from aqueous solution onto white rice husk ash. J Colloid Int Sci. 2013;409:112–122.
  • Wang XS, Zhou Y, Jiang Y, et al. The removal of basic dyes from aqueous solutions using agricultural by-products. J Hazard Mater. 2008;157(2–3):374–385.
  • Khan T, Isa MH, Mustafa MRU, et al. Cr(VI) adsorption from aqueous solution by an agricultural waste based carbon. RSC Adv. 2016;6:56365–56374.
  • Mashkoor F, Nasar A, Inamuddin, et al. Exploring the reusability of synthetically contaminated wastewater containing Crystal violet dye using Tectona grandis sawdust as a very low-cost adsorbent. Sci Rep. 2018;8:8314.
  • Safa Y, Bhatti HN. Kinetic and thermodynamic modeling for the removal of Direct Red-31 and Direct Orange-26 dyes from aqueous solutions by rice husk. Desalination. 2011;272:313–322.
  • Saha P. Assessment on the removal of methylene blue dye using tamarind fruit shell as bio-sorbent. Water Air Soil Pollut. 2010;213:287–299.
  • Gan C, Liu Y, Tan X, et al. Effect of porous zinc-biochar nanocomposites on Cr(VI) adsorption from aqueous solution. Rsc Adv. 2015;5(44):35107–35115.
  • Kolodynska D, Krukoswska-Bak J, Kazmierczak-Razna J, et al. Uptake of heavy metal ions from aqueous solutions by sorbents obtained from the spent ion exchange resins. Micropor Mesopor Mater. 2017;244:127–136.
  • Geed SR, Kureel MK, Giri BS, et al. Performance evaluation of Malathion biodegradation in batch and continuous packed bed bioreactor. Bioresour Technol. 2017;227:56–65.
  • Abu Talha M, Goswami M, Giri BS, et al. Bioremediation of Congo red dye in immobilized batch and continuous packed bed bioreactor by Brevibacillus parabrevis using coconut shell bio-char. Bioresour Technol. 2018;252:37–43.
  • Janyasuthiwong S, Rene ER, Esposito G, et al. Effect of pH on Cu, Ni and Zn removal by biogenic sulfide precipitation in an inversed fluidized bed bioreactor. Hydrometallurgy. 2015;158:94–100.
  • Marra A, Cesaro A, Rene ER, et al. Bioleaching of metals from WEEE shredding dust. J Environ Manage. 2018;210:180–190.
  • Mohammad BT, Rene ER, Veiga MC, et al. Performance of a thermophilic gas-phase biofilter treating high BTEX loads under steady-and transient-state operation. Int Biodeter Biodeg. 2017;119:289–298.