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Czasopismo
2020 | nr 37 | 36--46
Tytuł artykułu

Decolorization of dyes from textile wastewater using biochar: a review

Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The textile industry is one of the largest in many low and middle-income countries, especially in Asia, second only to agriculture. Textile wastewater is discharged into the environment due to the lack of affordable and sustainable solutions to adsorb or remove the dye from the water. Biochar is generated by pyrolysis of organic material from plant waste in low-oxygen conditions, and is considered carbon-negative. Biochar for dye adsorption in textile wastewater effluent was proven to be highly effective. However, adsorption efficiency varies with experimental parameters, therefore there is a gap in application especially in small dye houses. Efforts should be made to find innovative and affordable solution to make the textile industry more sustainable, by developing methods for collection and reuse, recycle and upcycle of textile waste, by reducing the consumption of water, energy and chemicals and by developing methods for treatment of the textile wastewater.(original abstract)
Czasopismo
Rocznik
Numer
Strony
36--46
Opis fizyczny
Twórcy
autor
  • School of Mechanical Engineering, Faculty of Engineering, Tel Aviv University
  • School of Mechanical Engineering, Faculty of Engineering, Tel Aviv University
  • School of Mechanical Engineering, Faculty of Engineering, Tel Aviv University
  • School of Mechanical Engineering, Faculty of Engineering, Tel Aviv University
Bibliografia
  • Mekonnen M.M., Hoekstra A.Y., Sustainability: Four billion people facing severe water scarcity; "Science Advances" 2 (2016), 1-7.
  • WWF-India; Accenture. Water Stewardship for Industries The need for a paradigm shift in India. (2013), 1-25.
  • Ammayappan L., Moses J.J., Study of the characteristics of angora rabbit hair in comparison with medium and fine wool fibers. "National Journal of Technology" 2 (2006), 50-62.
  • Islam M.M., Khan A.M., Islam M.M., Textile industries in Bangladesh and challenges of growth. "Research Journal of Engineering Sciences" 2 (2013), 31-37.
  • India Brand Equity Foundation. Textiles and Apparel. India Brand Equity Foundation. Available online: https://doi.org/10.1596/9780821399354_ch05. (2017), 45-54.
  • Natarajan S., Bajaj H.C., Tayade R.J., Recent advances based on the synergetic effect of adsorption for removal of dyes from waste water using photocatalytic process, "Journal of Environmental Sciences" (China) 63 (2018), 201-222.
  • Chemical Book- Dyes and Pigments www.chemicalbook.com/productcatalog_en/16.html
  • Talukder M.E., Kamruzzaman M., Majumder M., Rony Md S.H., Hossain M., Das S., Effects of Salt Concentration on the Dyeing of Various Cotton Fabrics with Reactive Dyes. "International Journal of Textile Science" 6 (2017) 7-14.
  • Rubeena K.K., Reddy P.H.P., Laiju A.R., Nidheesh P.V., Iron impregnated biochars as heterogeneous Fenton catalyst for the degradation of acid red 1 dye. "Journal of Environmental Management" 226 (2018), 320-328.
  • Mahajan S.P., Summer Report Pollution control in process Industries; IIT, Bombay. (2004).
  • Damas S.B., Miranda M.I.A., Piá A.B., Iborra-Clar M.I., Iborra-Clar A., Mendoza-Roca J.A., Ceramic membrane behavior in textile wastewater ultrafiltration. "Desalination" 250 (2010), 623-628.
  • Mostafa D., Waste water treatment in Textile Industries- the concept and current removal Technologies. "Journal of Biodiversity and Environmental Sciences" 7 (2015), 501-525.
  • Piaskowski K., Dąbrowska R.Ś., Zarzycki P.K., Dye Removal from Water and Wastewater Using Various Physical, Chemical, and Biological Processes. "Journal of AOAC International" 101 (2018), 1371-1383.
  • Anjum N.A., Gill S.S., Tuteja N., (Eds.) Enhancing cleanup of environmental pollutants. "Enhancing Cleanup and Environmental Pollutants" 2017.
  • Inyang M., Dickenson E., The potential role of biochar in the removal of organic and microbial contaminants from potable and reuse water: A review. "Chemosphere" 134 (2015), 232-240.
  • Kimbell L.K., Tong Y., Mayer B.K., McNamara P.J., Biosolids-Derived Biochar for Triclosan Removal from Wastewater. "Environmental Engineering Science" 35 (2018), 513-524.
  • Palansooriya K.N., Yang Y., Tsang Y.F., Sarkar B., Hou D., Cao X., Meers E., Rinklebe J., Kim K.H., Ok Y.S., Occurrence of contaminants in drinking water sources and the potential of biochar for water quality improvement: A review. "Critical Reviews in Environmental Science and Technology" 50 (2019), 549-611.
  • Verma M., M'hamdi N., Dkhili Z., Brar S.K., Misra K., Thermochemical Transformation of Agro-biomass into Biochar: Simultaneous Carbon Sequestration and Soil Amendment. Biotransformation of Waste Biomass into High Value Biochemicals, Springer New York, (2013), pp. 51-70.
  • Spear S., What is Biochar? Regeneration International websitehttps:// regenerationinternational.org/2018/05/16/what-is-biochar/(2018).
  • Ronsse F., Hecke S.V., Dickinson D., Prins W., Production and characterization of slow pyrolysis biochar: Influence of feedstock type and pyrolysis conditions. "GCB-Bioenergy" 5 (2013), 104-115.
  • Roy K., Verma K.M., Vikrant K., Goswami M., Sonwani R.K., Rai B.N., Vellingiri K., Kim K-H., Giri B.S., Singh R.S., Removal of Patent Blue (V) Dye Using Indian Bael Shell Biochar: Characterization, Application and Kinetic Studies. "Sustainability", 10 (2018), 2669.
  • Zhang X.N., Mao G.Y., Jiao Y.B., Shang Y., Han R.P., Adsorption of anionic dye on magnesium hydroxide-coated pyrolytic bio-char and reuse by microwave irradiation. "International Journal of Environmental Science and Technology" 11 (2014), 1439-1448.
  • Salleh M.A.M., Mahmoud D.K., Karim W.A.W.A, Idris A., Cationic and anionic dye adsorption by agricultural solid wastes: A comprehensive review. "Desalination", 280 (2011), 1-13.
  • Ajmal A., Majeed I., Malik R.N., Idriss H., Nadeem M.A. Principles and mechanisms of photocatalytic dye degradation on TiO2 based photocatalysts: A comparative overview. "RSC Advances" 4 (2014), 37003-37026.
  • Mishra G., Tripathy M., A critical review of the treatment for decolorization of textile effluent. "Colourage" 40 (1993), 35-38.
  • Sewu D.D., Boakye P., Woo S.H., Highly efficient adsorption of cationic dye by biochar produced with Korean cabbage waste; "Bioresource Technology" 224 (2017), 206-213.
  • Rubeenaa K.K., Reddya P.H.P., Laijub A.R., Nidheeshc P.V., Iron impregnated biochars as heterogeneous Fenton catalyst for the degradation of acid red 1 dye. "Journal of Environmental Management" 226 (2018), 320-328.
  • Han L., Xue S., Zhao S., Yan J., Qian L., Chen M., Biochar Supported Nanoscale Iron Particles for the Efficient Removal of Methyl Orange Dye in Aqueous Solutions. "PLoS ONE" 10 (2015), 1-7.
  • Yu J., Zhang X., Wang D., Li P., Adsorption of methyl orange dye onto biochar adsorbent prepared from chicken manure. "Water Science and Technology" 77 (2018), 1303-1312.
  • Leng L., Yuan X., Huang H., Shao J., Wang H., Chen X., Zeng G., Bio-char derived from sewage sludge by liquefaction: Characterization and application for dye adsorption. "Applied Surface Science" 346 (2015). 223-231.
  • Mathew M., Desmond R.D., Caxton M., Removal of methylene blue from aqueous solutions using biochar prepared from Eichhorrnia crassipes (Water Hyacinth)-molasses composite: Kinetic and equilibrium studies. "African Journal of Pure and Applied Chemistry" 10 (2016), 63-72.
  • Zazycki M.A., Godinho M., Perondi D., Foletto E.L., Collazzo G.C., Dotto G.L., New biochar from pecan nutshells as an alternative adsorbent for removing reactive red 141 from aqueous solutions. "Journal of Cleaner Production" 171 (2018). 57-65.
  • Kyi P.P., Quansah J.O., Lee C.G., Moon J.K., Park S.J., The Removal of Crystal Violet from Textile Wastewater Using Palm Kernel Shell-Derived Biochar. "Applied Sciences" 10 (2020), 2251.
  • Mahmoud M.E., Nabil G.M., El-Mallah N.M., Bassiouny H.I., Kumar S, A-Fattah T.M., Kinetics, isotherm, and thermodynamic studies of the adsorption of reactive red 195 A dye from water by modified switchgrass biochar adsorbent. "Journal of Industrial and Engineering Chemistry" 37 (2016), 156-167.
  • Thivyaa J., Vijayaraghavan J., Single and binary sorption of reactive dyes onto red seaweed-derived biochar: multi-component isotherm and modelling. "Desalination and Water Treatment" 156 (2019), 87-95.
  • Mubarak N.M., Fo Y.T., Al-Salim H.S., Sahu J.N., Abdullah E.C., Nizamuddin S., Jayakumar N.S., Ganesan P., Removal of Methylene Blue and Orange-G from Waste Water Using Magnetic Biochar. "International Journal of Nanoscience" 14 (2015), 1-4.
  • Rebitanim N.Z., Ghani W., Mahmoud D.K., Rebitanim N.A., Salleh M.M., Adsorption of methylene blue by agricultural solid waste of pyrolyzed EFB biochar. "Journal of Purity, Utility Reaction and Environment" 1 (2012), 376-390.
  • Nautiyal P., Subramanian K.A., Dastidar M.G., Adsorptive removal of dye using biochar derived from residual algae after in-situ transesterification: Alternate use of waste of biodiesel industry. "Journal of Environmental Management" 182 (2016), 187-197.
  • Oladipo A.A., Ifebajo A.O., Nisar N., Ajayi O.A., High-performance magnetic chicken bone-based biochar for efficient removal of rhodamine-B dye and tetracycline: competitive sorption analysis. "Water Science Technology" 76 (2017), 373-385.
  • Chaukura N., Murimba E.C., Gwenzi W., Sorptive removal of methylene blue from simulated wastewater using biochars derived from pulp and paper sludge. "Environmental Technology & Innovation" 8 (2017), 132-140.
  • Sewu D.D., Jung H., Kim S.S., Lee D.S., Woo S.H., Decolorization of cationic and anionic dye-laden wastewater by steam activated biochar produced at an industrial-scale from spent mushroom substrate. "Bioresource Technology" 277 (2019), 77-86.
  • Luo X.P., Fu S.Y., Du Y.M., Guo J.Z., Li B., Adsorption of methylene blue and malachite green 400 from aqueous solution by sulfonic acid group modified MIL-101. "Microporous and Mesoporous Materials" 237 (2017), 268-274.
  • Vyavahare G.D., Gurav R.G., Jadhav P.P., Patil R.R., Aware C.B., Jadhav J.P. Response surface methodology optimization for sorption of malachite green dye on sugarcane bagasse biochar and evaluating the residual dye for phyto and cytogenotoxicity. "Chemosphere" 194 (2018), 306-315.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.ekon-element-000171646892

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