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Research Articles

H2SO4-modified Aloe vera leaf shells for the removal of P-chlorophenol and methylene blue from aqueous environment

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Pages 57-67 | Received 24 Feb 2018, Accepted 16 May 2018, Published online: 12 Jul 2018

References

  • Ahmadi, K., Ghaedi, M., and Ansari, A., 2015. Comparison of nickel doped Zinc Sulfide and/or palladium nanoparticle loaded on activated carbon as efficient adsorbents for kinetic and equilibrium study of removal of Congo Red dye. Spectrochimica acta part A molecular and biomolecular spectroscopy, 136, 1441–1449.
  • Ahmed, M.J. and Theydan, S.K., 2013. Adsorption of p-chlorophenol onto microporous activated carbon from Albizia lebbeck seed pods by one-step microwave assisted activation. Journal of analytical and applied pyrolysis, 100, 253–260.
  • Akbal, F., 2005. Sorption of phenol and 4-chlorophenol onto pumice treated with cationic surfactant. Journal of environmental management, 74, 239–244.
  • Al-Ghouti, M.A., et al., 2009. Adsorption behaviour of methylene blue onto Jordanian diatomite: A kinetic study. Journal of hazardous materials, 165, 589–598.
  • Almeida, C.A.P., et al., 2009. Removal of methylene blue from colored effluents by adsorption on montmorillonite clay. Journal of colloid and interface science, 332, 46–53.
  • Barka, N., Abdennouri, M., and Makhfouk, M.E.L., 2011. Removal of Methylene Blue and Eriochrome Black T from aqueous solutions by biosorption on Scolymus hispanicus L.: kinetics, equilibrium and thermodynamics. Journal of the Taiwan Institute of chemical engineers, 42, 320–326.
  • Basiri, H., et al., 2015. Removal of aniline as a health-toxic substance from polluted water by aloe vera waste-based activated carbon. Der pharma chemica, 7, 149–155.
  • Biglari, H., et al., 2017. Removal of manganese from aqueous solutions by G4 poly-amidoamine dendrimer on poly-aluminium chloride. Fresenius environmental bulletin, 26, 6804–6811.
  • Biglari, H., et al., 2018. Cationic surfactant-modified clay as an adsorbent for the removal of synthetic dyes from aqueous solutions. International journal of chemical reactor engineering, 16 (5). Available from https://doi.org/10.1515/ijcre-2017-0064.
  • Bilgili, M.S., 2006. Adsorption of 4-chlorophenol from aqueous solutions by xad-4 resin: isotherm, kinetic, and thermodynamic analysis. Journal of hazardous materials B, 137, 157–164.
  • Chaari, I., et al., 2009. Adsorption of a textile dye “Indanthrene Blue RS (C.I. Vat Blue 4) from aqueous solutions onto smectite-rich clayey rock)”. Journal of hazardous materials, 172, 1623–1628.
  • Chatterjee, S., Lee, M.W., and Woo, S.H., 2010. Adsorption of congo red by chitosan hydrogel beads impregnated with carbon nanotubes. Bioresource technology, 101, 1800–1806.
  • Domínguez-Vargas, J.R., et al., 2009. Removal of chlorophenols in aqueous solution by carbon black low-cost adsorbents. Equilibrium study and influence of operation conditions. Journal of hazardous materials, 169, 302–308.
  • Elmoubarki, R., et al., 2015. Adsorption of textile dyes on raw and decanted Moroccan clays: kinetics, equilibrium and thermodynamics. Water resources and industry, 9, 16–29.
  • Ghaedi, M., et al., 2012. Cadmium hydroxide nanowire loaded on activated carbon as efficient adsorbent for removal of Bromocresol Green. Spectrochimica acta part A, 86, 62–68.
  • Guo, J.Z., et al., 2014. Removal of methylene blue from aqueous solutions by chemically modified bamboo. Chemosphere, 111, 225–231.
  • Hussin, Z.M., et al., 2015. Methylene blue adsorption onto NaOH modified durian leaf powder: isotherm and kinetic studies. American journal of environmental engineering, 5, 38–43.
  • Jourvand, M., et al., 2015. Removal of methylene blue from aqueous solutions using modified clay. Journal of basic medical science, 2, 32–41.
  • Kazembeigi, F., et al., 2014. Removal of methylen blue from aqueous solutionsusing raw and modified ruce husk. The veliger, 53, 1–7.
  • Khaniabadi, Y.O., et al., 2016a. Low-cost sorbent for the removal of aniline and methyl orange from liquid-phase: aloe vera leaves wastes. Journal of the Taiwan Institute of chemical engineers, 68, 90–98.
  • Khaniabadi, Y.O., et al., 2016b. Removal of methylene blue from aqueous solution by activated carbon from aloe vera wastes. Jundishapur journal of health sciences, e38242.
  • Khaniabadi, Y.O., et al., 2017. Removal of Congo red dye from aqueous solutions by a low-cost adsorbent: activated carbon prepared from Aloe vera leaves shell. Environmental health engineering and management journal, 4, 29–35.
  • Khaniabadi, Y.O., et al., 2018. Adsorption of congo red dye from aqueous solutions by montmorillonite as a low-cost adsorbent. International journal of chemical reactor engineering. 16(1).
  • Khattri, S. and Singh, M., 2009. Removal of malachite green from dye wastewater using neem sawdust by adsorption. Journal of hazardous materials, 167, 1089–1094.
  • Koumanova, B., and Peeva-Antova, P., 2002. Adsorption of p-chlorophenol from aqueous solutions on bentonite and perlite. Journal of hazardous materials, 90, 229–234.
  • Kuleyin, A¸E., 2007. Removal of phenol and 4-chlorophenol by surfactant-modified natural zeolite. Journal of hazardous materials, 144, 307–315.
  • Langmuir, I., 1918. The adsorption of gases on plane surfaces of glass, mica and platinum. Journal of the American chemical society, 40, 1361–1403.
  • Laszlo, K., 2005. Adsorption from aqueous phenol and aniline solutions on activated carbons with different surface chemistry. Colloids surfaces A: physicochem engineering aspects, 265, 32–39.
  • Li, J.M., et al., 2009a. Adsorption of phenol, p-chlorophenol and p-nitrophenol onto functional chitosan. Bioresource technology, 100, 1168–1173.
  • Li, X., et al., 2009b. Synthesis and characterization of ZnO and TiO2 hollow spheres with enhanced photoreactivity. Materials science and engineering B, 158, 40–47.
  • Liu, Q., et al., 2015. Adsorption of an anionic azo dye by cross-linked chitosan/bentonite composite. International journal of biological macromolecules, 72, 1129–1135.
  • Meziti, C. and Boukerroui, A., 2012. Removal of a basic textile dye from aqueous solution by adsorption on regenerated clay. Procedia engineering, 33, 303–312.
  • Mohammadi, M.J., et al., 2017a. Electrocoagulation process to chemical and biological oxygen demand treatment from carwash grey water in Ahvaz megacity, Iran. Data in brief, 11, 634
  • Mohammadi, M.J., et al., 2017b. Montmorillonite as adsorbent for the removal of methyl red from aqueous solution. Fresenius environmental bulletin, 26, 4088–4096.
  • Monsalvo, V.M., Mohedano, A.F., and Rodriguez, J.J., 2011. Activated carbons from sewage sludge application to aqueous-phase adsorption of 4-chlorophenol. Desalination, 277, 377–382.
  • Mourao, P., Carrott, P., and Ribeiro Carrott, M., 2006. Application of different equations to adsorption isotherms of phenolic compounds on activated carbons prepared from cork. Carbon, 44, 2422–2429.
  • Nguyen, A.T., and Juang, R.S., 2015. Photocatalytic degradation of p-chlorophenol by hybrid H2O2 and TiO2 in aqueous suspensions under UV irradiation. Journal of environmental management, 147, 271–277.
  • Nourmoradi, H., et al., 2016. Surfactant modified montmorillonite as a low cost adsorbent for4 chlorophenol: equilibrium, kinetic and thermodynamic study. Journal of the Taiwan Institute of chemical engineers, 59, 244–251.
  • Nourmoradi, H., Ghiasvand, A.R., and Noorimotlagh, Z., 2015. Removal of methylene blue and acid orange7 from aqueous solutions by activated carbon coated with zinc oxide (ZnO) nanoparticles: equilibrium, kinetic and thermodynamic study. Desalination and water treatment, 55, 252–262.
  • Omidi-Khaniabadi, Y., et al., 2015. Adsorption of 4-chlorophenol from aqueous solution using activated carbon synthesized from aloe vera green wastes. Journal of advances in environmental health research, 3, 120–129.
  • Omidi-Khaniabadi, Y., et al., 2016. Hexadecyl trimethyl ammonium bromide-modified montmorillonite as a low-cost sorbent for the removal of methyl red from liquid-medium. International journal of engineering, 29, 61–69.
  • Park, Y., et al., 2013. Structural characterization and environmental application of organo clays for the removal of phenolic compounds. Journal colloid interface science, 393, 319–334.
  • Radaei, A., Alavi Moghadam, S., and Arami, M., 2012. The study of the adsorption of reactive blue 19 dye by activated carbon from pomegranate residue. Water and wastewater jouranal, 4, 27–37.
  • Radhika, M., and Palanivelu, K., 2006. Adsorptive removal of chlorophenols from aqueous solution by low cost adsorbent-Kinetics and isotherm analysis. Journal of hazardous materials, 138, 116–124.
  • Shin, W.S., 2008. Competitive sorption of anionic and cationic dyes onto cetylpyridinium-modified montmorillonite. Journal of environmental science and health part A, 43, 1459–1470.
  • Temdrara, L., Khelifi, A., and Addoun, A., 2013. Study of methylene blue dye adsorption on to activated carbons from olive stones. International journal of chemical, molecular, nuclear, materials and metallurgical engineering, 7, 722–724.
  • Utomo, H.D., et al., 2015. Removal of methylene blue using chemically modified sugarcane bagasse. Natural resources, 6, 209.
  • Wang, S., et al., 2005a. Removal of dyes from aqueous solution using fly ash and red mud. Water research, 39, 129–138.
  • Wang, S., Boyjoo, Y., and Choueib, A., 2005b. A comparative study of dye removal using fly ash treated by different methods. Chemosphere, 60, 1401–1407.
  • Wu, R., et al., 2005. Comparisons of pore properties and adsorption performance of KOH-activated and steam-activated carbons. Microporous and Mesoporous Materials, 80(1–3), 95–106.
  • Xiao, S., et al., 2013. Effective removal of dyes from aqueous solution using ultrafine silk fibroin powder. Advanced powder technology, 25, 574–581.
  • Yao, T., et al., 2015. Investigation on efficient adsorption of cationic dyes on porous magnetic polyacrylamide microspheres. Journal of hazardous materials, 292, 90–97.
  • Zeydouni, G., 2018. Eriochrme black-T removal from aqueous environment by surfactant modified clay: equilibrium, kinetic, isotherm, and thermodynamic studies. Toxin reviews. https://doi.org/10.1080/15569543.2018.1455214.
  • Zhanga, B., et al., 2015. Adsorption of p-nitrophenol from aqueous solutions using nanographite. Colloids and surfaces A: physicochemical and engineering sspects, 464, 78–88.

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