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Research Articles

Dyes adsorption properties of KOH-activated resorcinol-formaldehyde carbon gels -kinetic, isotherm and dynamic studies

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Pages 186-197 | Received 07 Jun 2020, Accepted 26 Nov 2020, Published online: 14 Dec 2020

References

  • Afroze, S., Sen, T.K., and Ang, H.M., 2016. Adsorption performance of continuous fixed bed column for the removal of methylene blue (MB) dye using Eucalyptus sheathiana bark biomass. Research on chemical intermediates, 42 (3), 2343–2364.
  • Ahmad, A., and Hameed, B., 2010. Fixed-bed adsorption of reactive azo dye onto granular activated carbon prepared from waste. Journal of hazardous materials, 175 (1-3), 298–303.
  • Al-Muhtaseb, S.A., and Ritter, J.A., 2003. Preparation and properties of resorcinol–formaldehyde organic and carbon gels. Advanced Materials, 15 (2), 101–114.
  • Arivoli, S., et al., 2009. Adsorption dynamics of copper ion by low cost activated carbon. The Arabian journal for science and engineering, 34, 1–12.
  • Chen, J., et al., 2013. Equilibrium and kinetic studies of phosphate removal from solution onto a hydrothermally modified oyster shell material. PLoS one., 8 (4), 1–10.
  • Chowdhury, S., et al., 2011. Adsorption thermodynamics, kinetics and isosteric heat of adsorption of malachite green onto chemically modified rice husk. Desalination, 265 (1-3), 159–168.
  • Czakkel, O., et al., 2012. Drying of resorcinol–formaldehyde gels with CO2 medium. Microporous and mesoporous materials, 148 (1), 34–42.
  • Djelloul, C., and Hamdaoui, O., 2014. Dynamic adsorption of methylene blue by melon peel in fixed-bed columns. Desalination and water treatment, 56, 2966–2975.
  • Dubinin, M.M., and Radushkevich, L.V., 1947. Equation of the characteristic curve of activated charcoal. Chem Zentr, 1 (1), 875.
  • El-Araby, H.A., et al., 2017. Sesame husk as adsorbent for copper (II) Ions removal from aqueous solution. Journal of geoscience and environment protection, 05 (07), 109–152.
  • El-Hendawy, A.A., 2009. An insight into the KOH activation mechanism through the production of microporous activated carbon for the removal of Pb2 cations. Applied surface science, 255 (6), 3723–3730.
  • Elsayed, M.A., Hall, P.J., and Heslop, M.J., 2007. Preparation and structure characterization of carbons prepared from resorcinol-formaldehyde resin by CO2 activation. Adsorption, 13 (3-4), 299–306.
  • Faizal, A.N.M., Abdul Halim, M., and Zaini, M.A.A., 2019. Kinetics and dynamic adsorption of methylene blue by CO2-activated resorcinol formaldehyde carbon gels. Carbon letters, 29 (4), 319–326.
  • Ferraz, A. L., Tavares, M. T., Teixeira, J. A. (2005) Sorption of Cr(III) From Aqueous Solutions By Spent Brewery Grain. Proceedings of the 9th International Chemical Engineering Conference – CHEMPOR 2005. Coimbra, Portugal.
  • Freundlich, M.F., 1906. Over the adsorption in solution. The journal of physical chemistry, 57, 355–471.
  • Hameed, B., Tan, I., and Ahmad, A., 2008. Adsorption isotherm, kinetic modeling and mechanism of 2,4,6-trichlorophenol on coconut husk-based activated carbon. Chemical engineering journal, 144 (2), 235–244.
  • Han, R., et al., 2007. Biosorption of methylene blue from aqueous solution by rice husk in a fixed-bed column. Journal of hazardous materials, 141 (3), 713–718.
  • Hanbali, M., Holail, H., and Hammud, H., 2014. Remediation of lead by pretreated red algae: Adsorption isotherm, kinetic, column modeling and simulation studies. Green chemistry letters and reviews, 7 (4), 342–358.
  • Hema, M., and Arivoli, S., 2010. Adsorption kinetics and thermodynamics of malachite green dye unto acid activated low cost carbon. Journal of applied sciences and environmental management, 12 (1), 43–51.
  • Hui, T.S., and Zaini, M.A., 2015. Isotherm studies of methylene blue adsorption onto potassium salts-modified textile sludge. Jurnal teknologi, 74 (7), 57–63.
  • Jeyaraj, B., et al., 2014. Equilibrium, kinetic and thermodynamic study of adsorption of Rhodamine B from aqueous solution by activated carbon from peltophorum pterocarpum leaf. Wastewater and biosolids treatment and reuse. Otranto, Italy, 8–14.
  • Karthikeyan, S., Sivakumar, B., and Sivakumar, N., 2010. Film and pore diffusion modeling for adsorption of reactive red 2 from aqueous solution on to activated carbon preparedfrom bio-diesel industrial waste. E-journal of chemistry, 7 (S1), S175–S184.
  • Kim, B.T., et al., 1995. Adsorption of radionuclides from aqueous solutions by inorganic adsorbents. Separation science and technology, 30 (16), 3165–3182.
  • Kinnertová, E., and Slovák, V., 2018. Influence of catalyst amount on properties of resorcinol-formaldehyde xerogels. Thermochimica acta, 660, 37–43.
  • Maksin, D., et al., 2012. Kinetic modeling of heavy metal sorption by vinyl pyridine based copolymer. Hemijska industrija, 66 (6), 795–804.
  • Masuda, T., Ogino, I., and Mukai, S.R., 2013. Immobilization of magnesium ammonium phosphate crystals within microchannels for efficient ammonia removal. Water Science and Technology : a Journal of the International Association on Water Pollution Research, 67 (2), 359–365.
  • Michelson, L. D., et al., 1975., Removal of soluble mercury from wastewater by complexing technique, US Dept. Industry, Office of Water Research and Technology, Bull. No. 74.
  • Ming-Twang, S., et al., 2015. Activated carbon for dyes adsorption in aqueous solution. In: Daniels JA, ed. Advances in Environmental Research Vol. 36, Nova Science Publishers, New York, 217.
  • Monazam, E.R., et al., 2013. Equilibrium and kinetics analysis of carbon dioxide capture using immobilized amine on a mesoporous silica. AIChE journal, 59 (3), 923–935.
  • Moreno, A., et al., 2013. Carbonisation of resorcinol–formaldehyde organic xerogels: Effect of temperature, particle size and heating rate on the porosity of carbon xerogels. Journal of analytical and applied pyrolysis, 100, 111–116.
  • Moreno-Castilla, C., and Maldonado-Hódar, F., 2005. Carbon aerogels for catalysis applications: An overview. Carbon, 43 (3), 455–465.
  • Mukai, S.R., 2012. Controlling the morphology of carbon gels. Boletin Del Grupo Espanol Del Carbon, 26, 8.
  • Mulik, S., Sotiriou-Leventis, C., and Leventis, N., 2007. Time-efficient acid-catalyzed synthesis of resorcinol − formaldehyde aerogels. Chemistry of materials, 19 (25), 6138–6144.
  • Nur, T., et al., 2017. Removal of strontium from aqueous solutions and synthetic seawater using resorcinol formaldehyde polycondensate resin. Desalination, 420, 283–291.
  • Oyedoh, E.A., et al., 2013. Preparation of controlled porosity resorcinol formaldehyde xerogels for adsorption application. Chemical engineering transactions, 32, 1651–1656.
  • Park, S., and Jung, W., 2002. Effect of KOH Activation on the Formation of Oxygen Structure in Activated Carbons Synthesized from Polymeric Precursor. Journal of colloid and interface science, 250 (1), 93–98.
  • Pathania, D., Sharma, S., and Singh, P., 2017. Removal of methylene blue by adsorption onto activated carbon developed from Ficus carica bast. Arabian journal of chemistry, 10, S1445–S1451.
  • Pekala, R.W., 1989. Organic aerogels from the polycondensation of resorcinol with formaldehyde. Journal of materials science, 24 (9), 3221–3227.
  • Raganati, F., et al., 2018. Isotherms and thermodynamics of CO 2 adsorption on a novel carbon-magnetite composite sorbent. Chemical engineering research and design, 134, 540–552.
  • Redlich, O., and Peterson, D.L., 1959. A useful adsorption isotherm. The journal of physical chemistry, 63 (6), 1024–1024.
  • Rojas-Cervantes, M.L., 2015. Some strategies to lower the production cost of carbon gels. Journal of Materials Science, 50 (3), 1017–1040.
  • Santhi, M., and Kumar, P.E., 2015. Adsorption of Rhodamine B from an aqueous solution: kinetic, equilibrium and thermodynamic studies. International journal of innovative research in science, engineering and technology, 4 (2), 497–510.
  • Tan, I.A.W., Ahmad, A.L., and Hameed, B.H., 2008. Adsorption of basic dye using activated carbon prepared from oil palm shell: batch and fixed bed studies. Desalination, 225 (1-3), 13–28.
  • Tao, J., et al., 2017. Characterization and phenol adsorption performance of activated carbon prepared from tea residue by NaOH activation. Environmental Technology (United Kingdom), 40 (2), 171–181.
  • Tsuchiya, T., et al., 2014. Binderfree synthesis of high-surface-area carbon electrodes via CO2 activation of resorcinol–formaldehyde carbon xerogel disks: Analysis of activation process. Carbon, 76, 240–249.
  • Wang, X., et al., 2017. Resorcinol–formaldehyde resin-based porous carbon spheres with high CO2 capture capacities. Journal of energy chemistry, 26 (5), 1007–1013.
  • Wu, F., Tseng, R., and Juang, R., 2009. Initial behavior of intraparticle diffusion model used in the description of adsorption kinetics. Chemical engineering journal, 153 (1-3), 1–8.
  • Wu, X., et al., 2012. Preparation of carbon aerogels with different pore structures and their fixed bed adsorption properties for dye removal. Dyes and pigments, 95 (3), 689–694.
  • Yagub, M.T., Sen, T.K., and Ang, M., 2014. Removal of cationic dye methylene blue (MB) from aqueous solution by ground raw and base modified pine cone powder. Environmental earth sciences, 71 (4), 1507–1519.
  • Yang, B., et al., 2015. N-doped carbon xerogels as adsorbents for the removal of heavy metal ions from aqueous solution. RSC advances, 5 (10), 7182–7191.
  • Yoon, Y.H., and Nelson, J.H., 1984. Application of gas adsorption kinetics. I. A theoretical model for respirator cartridge service life. American industrial hygiene association journal, 45 (8), 509–516.
  • Zaini, M.A., et al., 2017. Preliminary evaluation of resorcinol-formaldehyde carbon gels for water pollutants removal. Acta chimica slovaca, 10 (1), 54–60.
  • Zanella, O., Tessaro, I., and Féris, L., 2015. Nitrate sorption on activated carbon modified with CaCl2: Equilibrium, isotherms and kinetics. Chemical industry and chemical engineering quarterly, 21 (1-1), 23–33.

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