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Articles

Preparation and characterization of activated carbons derived from bio-solid: a review

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Pages 4848-4862 | Received 20 Sep 2012, Accepted 07 May 2013, Published online: 20 Jun 2013

References

  • A. Mendez, G. Gasco, M.M.A. Freitas, G. Siebielec, T. Stuczynski, J.L. Figueiredo, Preparation of carbon-based adsorbents from pyrolysis and air activation of sewage sludges. Chem. Eng. J. 108 (2005) 169–177.
  • T.J. Mc-Ghee, Water Supply and Sewerage. Mc-Graw-Hill, New York, 1991.
  • M.D. Lourdes, T. Montile, R.D. Tyagi, J.R. Valero, Wastewater treatment sludge as a raw material for the production of Bacillus thuringiensis based Biopesticides. Water Res. 35 (2001) 3807–3816.
  • DOE, Environmental Quality Report. Department of Environment, Ministry of Science, Technology and Environmental, Kuala Lumpur, Malaysia, 1996.
  • M.D.A. Kadir, S. Velayutham, The management of municipal wastewater sludge in Malaysia. Symposium on Sludge Management, University Technology Malaysia, Johor Bahru, Malaysia, 1999.
  • C.R. Brunner, Design of Sewage Sludge Incineration System. Noyes, Park Ridge, NJ, 1980.
  • P. Thipkhunthod, V. Meeyoo, P. Rangsunvigit, B. Kitiyanan, K. Siemanond, T. Rirksomboon, Pyrolytic characteristics of sewage sludge. Chemosphere 64 (6) (2006) 955–962.
  • K.M. Smith, G.D. Fowler, S. Pullket, N.J.D. Graham, Sewage sludge-based adsorbents: A review of their production, properties and use in water treatment applications. Water Res. 43 (2009) 2569–2594.
  • Y. Kim, W. Parker, A technical and economic evaluation of the pyrolysis of sewage sludge for the production of bio-oil. Bioresour. Technol. 99 (2008) 1409–1416.
  • V. Sánchez-Arias, F.J. Fernández, J. Villaseñor, L. Rodríguez, Enhancing the co-composting of olive mill wastes and sewage sludge by the addition of an industrial waste. Bioresour. Technol. 99 (2008) 6346–6353.
  • J. Massanet-Nicolau, R. Dinsdale, A. Guwy, Hydrogen production from sewage sludge using mixed microflora inoculum: Effect of pH and enzymatic pretreatment. Bioresour. Technol. 99 (2008) 6325–6331.
  • J. Sipma, B. Osuna, N. Collado, H. Monclús, G. Ferrero, J. Comas, I. Rodriguez-Roda, Comparison of removal of pharmaceuticals in MBR and activated sludge systems. Desalination 250 (2010) 653–659.
  • H.A. Al-Aoh, M.J. Maah, A.A. Ahmad, M. Radzi Bin Abas, Adsorption of 4-nitrophenol on palm oil fuel ash activated by amino silane coupling agent. Desalin. Water Treat. 40 (2012) 159–167.
  • A.A. Ahmad, A. Idris, B.H. Hameed, Color and COD reduction from cotton textile processing wastewater by activated carbon derived from solid waste in column mode. Desalin. Water Treat. 41 (2012) 224–231.
  • K.Y. Foo, B.H. Hameed, Potential of activated carbon adsorption processes for the remediation of nuclear effluents: A recent literature. Desalin. Water Treat. 41 (2012) 72–78.
  • M. Otero, F. Rozada, A. Morán, L.F. Calvo, A.I. García, Removal of heavy metals from aqueous solution by sewage sludge based sorbents: Competitive effects. Desalination 239 (2009) 46–57.
  • W.H. Li, Q.Y. Yue, B.Y. Gao, X.J. Wang, Y.F. Qi, Y.Q. Zhao, Y.J. Li, Preparation of sludge-based activated carbon made from paper mill sewage sludge by steam activation for dye wastewater treatment. Desalination 278 (2011) 179–185.
  • V.M. Monsalvo, A.F. Mohedano, J.J. Rodriguez, Activated carbons from sewage sludge application to aqueous-phase adsorption of 4-chlorophenol. Desalination 277 (2011) 377–382.
  • M.J. Martin, A. Artola, M.D. Balaguer, M. Rigola, Towards waste minimization in WWTP: Activated carbon from biological sludge and its application in liquid phase adsorption. J. Chem. Technol. Biotech. 77 (7) (2002) 825–833.
  • J.S. Cha, J.C. Choi, J.H. Ko, Y.K. Park, S.H. Park, K.E. Jeong, S.S. Kim, J.K. Jeone, The low-temperature SCR of NO over rice straw and sewage sludge derived char. Chem. Eng. J. 156 (2010) 321–327.
  • M. Seredych, C. Strydom, T.J. Bandosz, Effect of fly ash addition on the removal of hydrogen sulfide from biogas and air on sewage sludge-based composite adsorbents. Waste Manage. 28 (2008) 1983–1992.
  • G. Chobanoglous, Wastewater engineering, treatment, disposal and reuse. Tata McGraw-Hill, New Delhi, 1987.
  • J. Werther, T. Ogada, Sewage sludge combustion. Prog. Energy Combust. Sci. 25 (1999) 55–116.
  • F.R. Spellman, Wastewater Biosolids to Compost, USA, 1997.
  • I.S. Turovskiy, P.K. Mathai, Wastewater Sludge Processing. Wiley, Hoboken, NJ, 2006.
  • S.Q. Aziz, H. Abdul Aziz, M.S. Yusoff, M.J.K. Bashir, Landfill leachate treatment using powdered activated carbon augmented sequencing batch reactor (SBR) process: Optimization by response surface methodology. J. Hazard. Mater. 189 (2011) 404–413.
  • A.A. Ahmad, Preparation and characterization of activated carbons from rattan and bamboo waste for color and COD removal, Ph.D thesis, University Science Malaysia, 2010.
  • L. Gu, N. Zhu, H. Guo, S. Huang, Z. Lou, H. Yuan, Adsorption and Fenton-like degradation of naphthalene dye intermediate on sewage sludge derived porous carbon. J. Hazard. Mater. 246–247 (2013) 145–153.
  • Q. Wen, C. Li, Z. Cai, W. Zhang, H. Gao, L. Chen, G. Zeng, X. Shu, Y. Zhao, Study on activated carbon derived from sewage sludge for adsorption of gaseous formaldehyde. Bioresour. Technol. 102 (2011) 942–947.
  • S. Rio, L.L. Coq, C. Faur, D. Lecomte, P.L. Cloirec, Preparation of adsorbent from sewage sludge by steam activation for industrial emission treatment. Process Saf. Environ. Prot. 84 (B4) (2006) 258–264.
  • W.H. Li, Q.Y. Yue, B.Y. Gao, Z.H. Ma, Y.J. Li, H.X. Zhao, Preparation and utilization of sludge-based activated carbon for the adsorption of dyes from aqueous solutions. Chem. Eng. J. 171 (2011) 320–327.
  • S. Rio, C. Faur-Brasquet, L.L. Coq, P. Courcoux, P.L. Cloirec, Experimental design methodology for the preparation of carbonaceous sorbents from sewage sludge by chemical activation––application to air and water treatments. Chemosphere 58 (2005) 423–437.
  • R. Wahi, A. Idris, M.A.M. Salleh, K. Khalid, Low-temperature microwave pyrolysis of sewage sludge. Int. J. Eng. Technol. 3 (2006) 132–138.
  • A. Ros, M.A. Lillo-Rodenas, E. Fuente, M.A. Montes-Moran, M.J. Martın, A. Linares-Solano, High surface area materials prepared from sewage sludge-based precursors. Chemosphere 65 (2006) 132–140.
  • M.J. Martin, E. Serra, A. Ros, M.D. Balaguer, M. Rigola, Carbonaceous adsorbents from sewage sludge and their application in a combined activated sludge-powdered activated carbon (AS-PAC) treatment. Carbon 42 (2004) 1389–1394.
  • F. Rozada, M. Otero, A. Moran, A.I. Garcıa, Activated carbons from sewage sludge and discarded tyres: Production and optimization. J. Hazard. Mater. B 124 (2005) 181–191.
  • P. Thipkhunthod, V. Meeyoo, P. Rangsunvigit, B. Kitiyanan, K. Siemanond, T. Rirksomboon, Pyrolytic characteristics of sewage sludge. Chemosphere 64 (2006) 955–962.
  • N. Kojima, A. Mitomo, Y. Itay, S. Mori, S. Yoshida, Adsorption removal of pollutants by active cokes produced from sludge in the energy recycle process of wastes. Waste Manage. 22 (2002) 399–404.
  • C.Y. Wereko-Brobby, E.B. Haen, Biomass Conversion and Technology. Wiley, New York, 1996.
  • F. Rodriguez-Reinoso, A.S. Escribano, H.S. Nalwa, Porous Carbons in Adsorption and Catalysis. 5th ed. San Diego, CA, 2001. pp. 309–355.
  • J. Gonzalez, S. Roman, J. Encinar, G. Martınez, Pyrolysis of various biomass residues and char utilization for the production of activated carbons. J. Anal. Appl. Pyrolysis 85 (2009) 134–141.
  • Q.H. Lin, H. Cheng, G.Y. Chen, Preparation and characterization of carbonaceous adsorbents from sewage sludge using a pilot-scale microwave heating equipment. J. Anal. Appl. Pyrolysis 93 (2012) 113–119.
  • N.R. Khalili, M. Campbell, G. Sandi, J. Golas, Production of micro- and mesoporous activated carbon from paper mill sludge, Effect of zinc chloride activation. Carbon 38 (2000) 1905–1915.
  • M.K.B. Gratuito, T. Panyathanmaporn, R.A. Chumnanklang, N. Sirinuntawittaya, A. Dutta, Production of activated carbon from coconut shell: Optimization using response surface methodology. Bioresour Technol. 99 (2008) 4887–4895.
  • A. Ahmad, D.D. Do, Preparation of activated carbon from macadamia nutshell by chemical activation. Carbon 35 (1997) 1723–1732.
  • A.N.A. El-Hendawy, Surface and adsorptive properties of carbons prepared from biomass. Appl. Surf. Sci. 252 (2005) 287–295.
  • R.L. Tseng, S.K. Tseng, F.C. Wu, Preparation of high surface area carbons from Corncob with KOH etching plus CO2 gasification for the adsorption of dyes and phenols from water. Colloids Surf, A 279 (2006) 69–78.
  • F. Rodríguez-Reinoso, M. Molina-Sabio, Activated carbons from lignocellulosic materials by chemical and/or physical activation: An overview. Carbon 30 (1992) 1111–1118.
  • M. Turmuzi, W.R.W. Daud, S.M. Tasirin, M.S. Takriff, S.E. Iyuke, Production of activated carbon from candlenut shell by CO2 activation. Carbon 42 (2004) 453–455.
  • S. Rio, L.L. Coq, C. Faur, P. Cloirec, Production of porous carbonaceous adsorbent from physical activation of sewage sludge: Application to wastewater treatment. Water Sci. Technol. 53 (3) (2006) 237–244.
  • H. Bosch, G.J. Kleerebezem, P. Mars, Activated carbon from activated-sludge. J. Water Pollut. Control Fed. 48 (3) (1976) 551–561.
  • J. Hayashi, T. Horikawa, I. Takeda, K. Muroyama, A.F. Nasir, Preparing activated carbon from various nutshells by chemical activation with K2CO3. Carbon 40 (2002) 2381–2386.
  • Z. Hu, M. Srinivasan, Y. Ni, Novel activation process for preparing highly microporous and mesoporous activated carbons. Carbon 39 (2001) 877–886.
  • M. Ncibi, V. Jeanne-Rose, B. Mahjoub, C. Jean-Marius, J. Lambert, Preparation and characterisation of raw chars and physically activated carbons derived from marine Posidonia oceanica (L.) fibres. J. Hazard. Mater. 165 (2009) 240–249.
  • A. Klijanienko, E. Lorenc-Grabowska, G. Gryglewicz, Development of mesoporosity during phosphoric acid activation of wood in steam atmosphere. Bioresour. Technol. 99 (2008) 7208–7214.
  • D. Mohan, K.P. Singh, Granular activated carbon. in: J. Lehr, J. Keeley, J. Lehr (Eds.) Water Encyclopedia: Domestic Municipal and Industrial Water Supply and Waste Disposal. Wiley/Interscience, New York, NY, 2005, pp. 63–67.
  • O. Ioannidou, A. Zabaniotou, Agricultural residues as precursors for activated carbon production—A review. Renewable Sustainable Energy Rev. 11 (2007) 1966–2005.
  • J. Hayashi, A. Kazehaya, K. Muroyama, A. Watkinson, Preparation of activated carbon from lignin by chemical activation. Carbon 38 (2000) 1873–1878.
  • P. Carrott, M. Carrott, C. Guerrero, L. Delgado, Reactivity and porosity development during pyrolysis and physical activation in CO2 or steam of kraft and hydrolytic lignins. J. Anal. Appl. Pyrolysis 82 (2008) 264–271.
  • H. Marsh, F. Rodriguez-Reinoso, Activated Carbon. Elsevier, London, 2006.
  • A.R. Reed, P.T. Williams, Thermal processing of biomass natural fiber wastes by pyrolysis. Int. J. Energy Res. 28 (2004) 131–145.
  • Y. Chen, Y. Zhu, Z. Wang, Y. Li, L. Wang, L. Ding, X. Gao, Y. Ma, Y. Guo, Application studies of activated carbon derived from rice husks produced by chemical-thermal process—A review. Adv. Colloid Interface Sci. 163 (2011) 39–52.
  • S. Jeyaseelan, G.Q. Lu, Development of adsorbent/catalyst from municipal wastewater sludge. Water Sci. Technol. 34 (3–4) (1996) 499–505.
  • C. Jindarom, V. Meeyoo, B. Kitiyanan, T. Rirksomboon, P. Rangsunvigit, Surface characterization and dye adsorptive capacities of char obtained from pyrolysis/gasification of sewage sludge. Chem. Eng. J. 133 (1–3) (2007) 239–246.
  • K.B. Fitzmorris, I.M. Lima, W.E. Marshall, R.S. Reimers, Anion and cation removal from solution using activated carbons from municipal sludge and poultry manure. J. Resid. Sci. Technol. 3 (3) (2006) 161–167.
  • S.C. Pan, C.C. Lin, D.H. Tseng, Reusing sewage sludge ash as adsorbent for copper removal from wastewater. Resour. Conserv. Recycl. 39 (1) (2003) 79–90.
  • R.R.N. Marquesa, F. Stübera, K.M. Smithb, A. Fabregata, C. Bengoaa, J. Fonta, A. Fortunya, S. Pullketb, G.D. Fowlerb, N.J.D. Graham, Sewage sludge based catalysts for catalytic wet air oxidation of phenol: Preparation, characterisation and catalytic performance. Appl. Catal. B: Environ. 101 (2011) 306–316.
  • C.J. Lebigue, C. Andriantsiferana, N.G. Krou, C. Ayral, E. Mohameda, A.M. Wilhelm, H. Delmas, L.L. Coq, C. Gerente, K.M. Smith, S. Pullket, G.D. Fowler, N.J.D. Grahamc, Application of sludge-based carbonaceous materials in a hybrid water treatment process based on adsorption and catalytic wet air oxidation. J. Environ. Manage. 91 (2010) 2432–2439.
  • A.A. Ahmad, B.H. Hameed, A.L. Ahmad, Removal of disperses dye from aqueous solution using waste-derived activated carbon: Optimization study. J. Hazard. Mater. 170 (2009) 612–619.
  • K.Y. Foo, B.H. Hameed, Preparation, characterization and evaluation of adsorptive properties of orange peel based activated carbon via microwave induced K2CO3 activation. Bioresour. Technol. 104 (2012) 679–686.
  • T. Taya, S. Ucarb, S. Karagz, Preparation and characterization of activated carbon from waste biomass. J. Hazard. Mater. 165 (2009) 481–485.
  • M.A. Lillo-Rodenas, J. Juan-Juan, D. Cazorla-Amoros, A. Linares-Solano, About reactions occurring during chemical activation with hydroxides. Carbon 42 (2004) 1371–1375.
  • I.A.W. Tan, A.L. Ahmad, B.H. Hameed, Adsorption of basic dye using activated carbon prepared from oil palm shell: Batch and fixed bed studies. Desalination 225 (2008) 13–28.
  • K.Y. Foo, B.H. Hameed, Coconut husk derived activated carbon via microwave induced activation: Effects of activation agents, preparation parameters and adsorption performance. Chem. Eng. J. 184 (2012) 57–65.
  • M.T. Izquierdo, B. Rubio, C. Mayoral, J.M. Andrés, Modifications to the surface chemistry of low-rank coal-based carbon catalysts to improve flue gas nitric oxide removal. Appl. Catal. B 33 (2001) 315–324.
  • D. Montané, V.T. Fernádez, V. Fierro, Activated carbons from lignin: Kinetic modeling of the pyrolysis of kraft lignin activated with phosphoric acid. Chem. Eng. J. 106 (2005) 1–12.
  • M.O. Marín, C.F. González, A.M. García, V.G. Serrano, Thermal behavior of lignocellulosic material in the presence of phosphoric acid: Influence of the acid content in the initial solution. Carbon 44 (2006) 2347–2350.
  • B. Jibril, O. Houache, R.A. Maamari, B.A. Rashidi, Effects of H3PO4 and KOH in carbonization of lignocellulosic material. J. Anal. Appl. Pyrolysis 83 (2008) 151–158.
  • X. Chen, S. Jeyaseelan, N. Graham, Physical and chemical properties study of the activated carbon made from sewage sludge. Waste Manage. 22 (2002) 755–760.
  • M.A. Lillo-Rodenas, A. Ros, E. Fuente, M.A. Montes-Moran, M.J. Martin, A. Linares-Solano, Further insights into the activation process of sewage sludge-based precursors by alkaline hydroxides. Chem. Eng. J. 142 (2) (2008) 168–174.
  • B.R. Cho, M. Suzuki, Activated carbon by pyrolysis of sludge from pulp-mill wastewater-treatment. J. Chem. Eng. Jpn. 13 (6) (1980) 463–467.
  • N.R. Khalilia, M. Campbell, G. Sandib, J. Golas, Production of micro- and mesoporous activated carbon from paper mill sludge I. Effect of zinc chloride activation. Carbon 38 (2000) 1905–1915.
  • F. Rozada, L.F. Calvo, A.I. Garcia, J. Martin-Villacorta, M. Otero, Dye adsorption by sewage sludge-based activated carbons in batch and fixed-bed systems. Bioresour. Technol. 87 (3) (2003) 221–230.
  • F.S. Zhang, J.O. Nriagu, H. Itoh, Mercury removal from water using activated carbons derived from organic sewage sludge. Water Res. 39 (2–3) (2005) 389–395.
  • H.Y. Kang, S.S. Park, Y.S. Rim, Preparation of activated carbon from paper mill sludge by KOH-activation Korean. J. Chem. Eng. 23 (6) (2006) 948–953.
  • C. Liu, Z. Tang, Y. Chen, S. Su, W. Jiang, Characterization of mesoporous activated carbons prepared by pyrolysis of sewage sludge with pyrolusite. Water Bioresour. Technol. 101 (2010) 1097–1101.
  • F. Ping, C.E.N. Chaoping, C.H.E.N. Dingsheng, T.A.N.G. Zhixiong, Carbonaceous adsorbents prepared from sewage sludge and its application for Hg adsorption in simulated flue gas. Chin. J. Chem. Eng. 18 (2) (2010) 231–238.
  • S. Brunauer, P.H. Emmett, E. Teller, Adsorption of gases in multi-molecular layers. J. Am. Chem. Soc. 60 (1938) 309–319.
  • G.S. Miguel, G.D. Fowler, C.J. Sollars, A study of the characteristics of activated carbons produced by steam and carbon dioxide activation of waste tyre rubber. Carbon 41 (2003) 1009–1016.
  • M. Ahmedna, W.E. Marshall, A.A. Husseiny, R.M. Rao, I. Goktepe, The use of nutshell carbons in drinking water filters for removal of trace metals. Water Res. 38 (2004) 1062–1068.
  • S.H. Lin, Adsorption of disperse dye by powdered activated carbon. J. Chem. Technol. Biotechnol. 54 (4) (1993) 387–391.
  • IUPAC, IUPAC manual of symbols and terminology, Pure and Appl. Chem. 31 (1972) 587.
  • M.F.R. Pereira, S.F. Soares, J.J.M. Orfao, J.L. Figueiredo, Adsorption of dyes on activated carbon: Influence of surface chemical groups. Carbon 41 (2003) 811–821.
  • E. Papirer, S. Li, J.B. Donnet, Contribution to the study of basic surface groups on carbon. Carbon 25 (1987) 243–247.
  • G.G. Stavropoulos, A.A. Zabaniotou, Production and characterization of activated carbons from olive-seed waste residue. Microporous Mesoporous Mater. 82 (2005) 79–85.
  • T. Yang, A.C. Lua, Characteristics of activated carbons prepared from pistachio-nuts shells by physical activation. J. Colloid Interface Sci. 267 (2003) 408–417.
  • J.P. Cao, L.Y. Li, K. Morishita, X.B. Xiao, X.Y. Zhao, X.Y. Wei, T. Takarada, Nitrogen transformations during fast pyrolysis of sewage sludge. Fuel 104 (2013) 1–6.
  • V. Réveillé, L. Mansuy, É. Jardé, É. Garnier-Sillam, Characterisation of sewage sludge-derived organic matter: Lipids and humic acids. Org. Geochem. 34 (2003) 615–627.
  • M. Grube, J.G. Lin, P.H. Lee, S. Kokorevicha, Evaluation of sewage sludge-based compost by FT-IR spectroscopy. Geoderma 130 (2006) 324–333.
  • B.H. Stuart, Infrared Spectroscopy: Fundamentals and Applications. Wiley, New York, 2004.
  • S. Amira, A. Jouraiphyb, A. Meddichb, M. Gharousb, P. Wintertonc, M. Hafidid, Structural study of humic acids during composting of activated sludge-green waste: Elemental analysis FTIR and 13C NMR. J. Hazard. Mater. 177 (2010) 524–529.
  • N. Senesi, T.M. Miano, G. Brunetti, Humic -like substances in organic amendments and effects on native soil humic substances, in: A. Piccolo (Ed.), Humic Substances in Terrestrial Ecosystems, Bari, Italy, 1996, pp. 531–593.
  • S.C. Pan, C.C. Lin, D.H. Tseng, Reusing sewage sludge ash as adsorbent for copper removal from waste water. Resour. Conserv. Recycl. 39 (2003) 79–90.
  • O. Duggan, S.J. Allen, Study of the physical and chemical characteristics of a range of chemically treated, lignite based carbons. Water Sci. Technol. 35 (7) (1997) 21–27.
  • T. Yang, A.C. Lua, Textural and chemical properties of zinc chloride activated carbons prepared from pistachio-nut shells. Mater. Chem. Phys. 100 (2006) 438–444.
  • A.M. Ferro Orozco, E.M. Contreras, N.E. Zaritzky, Dynamic response of combined activated sludge-powdered activated carbon batch systems. Chem. Eng. J. 157 (2010) 331–338.
  • M. Seredych, T.J. Bandosz, Removal of cationic and ionic dyes on industrial–municipal sludge based composite adsorbents. Ind. Eng. Chem. Res. 46 (6) (2007) 1786–1793.
  • Y. Zhai, X. Wei, G. Zeng, D. Zhang, K. Chu, Study of adsorbent derived from sewage sludge for the removal of Cd2+, Ni2+ in aqueous solutions. Sep. Purif. Technol. 38 (2004) 191–196.
  • F. Rozada, M. Otero, A. Moran, A.I. Garcıa, Adsorption of heavy metals onto sewage sludge-derived materials. Bioresour. Technol. 99 (2008) 6332–6338.
  • X. Wang, N. Zhu, B. Yin, Preparation of sludge-based activated carbon and its application in dye wastewater treatment. J. Hazard. Mater. 153 (2008) 22–27.

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