Krízový Manažment 2019, 18(1):12-20 | DOI: 10.26552/krm.C.2019.1.12-20

SORPCIA DVOCH ORGANICKÝCH FARBÍV A MERANIA ŠPECIFICKÉHO POVRCHU SORBENTOV POUŽÍVANÝCH PRI MIMORIADNYCH SITUÁCIACH

Priscilla KECHE, Cyril S. DUBE, Roman TANDLICH
Division of Pharmaceutical Chemistry, Faculty of Pharmacy Rhodes University, Biotechnology Innovation Centre, P.O. Box 94, Grahamstown 6140, South Africa

The specific surface areas of kaolinite, activated charcoal and talc cover a wide range of values, which are extensively reported in literature. Therefore, these three adsorbents were used in this study for comparison of the specific surface area measurements using two molecular probes in the dye adsorption method, namely methylene blue and brilliant green. Both dyes were dissolved in MilliQ water and the batch-equilibration technique was used to measure the respective adsorption isotherms. The equilibrium data was analysed using the Langmuir isotherm and the specific surface areas were calculated using the maximum sorption capacities for methylene blue and brilliant green, as well as the literature/calculated molecular dimensions of methylene blue and brilliant green. Adsorption equilibrium of all three adsorbents was attained within the first 24 hours of contact time with both dyes, and the adsorption followed the Langmuir isotherm model which reflects the formation of a monolayer of both dyes on all three adsorbents. Use of NaOH to increase pH of methylene blue to a stable pH of 8.5 ± 0.2 was not achieved due to methylene blue exhibiting buffering properties within the first 2 hours of the adjustment. Preparation of methylene blue and brilliant green dilutions using MilliQ water only, resulted in a more stable acidic pH of 6±0.5 and 5±0.5 respectively. The pH of dye solutions ha s a significant effect on the adsorption process. The specific surface area values of talc (136.1 m2/g) and kaolinite (24.22 m2/g) determined using brilliant green dye are higher than those determined using methylene blue dye. Brilliant green was found to be more stable than methylene blue, and talc powder indicated to be a highly significant adsorbent in wastewater treatment containing brilliant green dye. Surface area results show that kaolinite and activated charcoal have high affinity for methylene blue.

Kľúčové slová: Methylene blue, Brilliant green, Sorption, Langmuir isotherm, Wastewater

Uverejnené: March 30, 2019  Zobraziť citáciu

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KECHE, P., DUBE, C.S., & TANDLICH, R. (2019). SORPCIA DVOCH ORGANICKÝCH FARBÍV A MERANIA ŠPECIFICKÉHO POVRCHU SORBENTOV POUŽÍVANÝCH PRI MIMORIADNYCH SITUÁCIACH. Krízový Manažment18(1), 12-20. doi: 10.26552/krm.C.2019.1.12-20
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Referencie

  1. BRUNAUER, S., EMMETT, P.H., TELLER, E. 1938. Adsorption of gases in multimolecular layers. Journal of the American Chemical Society 60: 309-319 Prejsť k pôvodnému zdroju...
  2. SANTAMARINA, J.C., KLEIN, K.A., WANG, Y.H., PRENCKE, E. 2002. Specific surface: determination and relevance. Canadian Geotechnical Journal 39(1): 233-241. Prejsť k pôvodnému zdroju...
  3. CERATO, A.B., LUTENEGGER, A.J. 2002. Determination of surface area of fine-grained soils by the ethylene glycol monoethyl ether (EGME) method. Geotechnical Testing Journal 25(3). Scopus: 315-321. Prejsť k pôvodnému zdroju...
  4. CHURCHMAN, G.J., BURKE, C.M., PARFITT, R.L. 1991. Comparison of various methods for the determination of specific surfaces of sub soils. Journal of Soil Science 42(3): 449-461. Prejsť k pôvodnému zdroju...
  5. HANG P.T. 1970. Methylene Blue Absorption by Clay Minerals. Determination of Surface Areas and Cation Exchange Capacities (Clay-Organic Studies XVIII). Clays and Clay Minerals 18: 203-212. Prejsť k pôvodnému zdroju...
  6. BARKER, N.W., LINGE, H.G. 1981. Methylene blue dye adsorption on sulphide minerals - relevance to surface area measurement. Hydrometallurgy 6(3): 311-326. Prejsť k pôvodnému zdroju...
  7. NANDI, B.K., GOSWAMI, A., PURKAIT, M.K. 2009. Adsorption characteristics of brilliant green dye on kaolin. Journal of Hazardous Materials 161(1): 387-395. Prejsť k pôvodnému zdroju...
  8. ARNEPALLI, D.N., SHANTHAKUMAR, S., RAO, B.H., SINGH, D.N. 2007. Comparison of Methods for Determining Specific-surface Area of Fine-grained Soils. Geotechnical and Geological Engineering 26(2): 121-132. Prejsť k pôvodnému zdroju...
  9. MAČEK, M., MAUKO, A., MLADENOVIČ, A., MAJES, B., PETKOVŠEK, A. 2013. A comparison of methods used to characterize the soil specific surface area of clays. Applied Clay Science 83-84: 144-152. Prejsť k pôvodnému zdroju...
  10. YUKSELEN, Y., KAYA, A. 2006. Comparison of Methods for Determining Specific Surface Area of Soils. Journal of Geotechnical and Geo-environmental Engineering 132(7): 931-936. Prejsť k pôvodnému zdroju...
  11. YUKSELEN-AKSOY, Y., KAYA, A. 2010. Method dependency of relationships between specific surface area and soil physicochemical properties. Applied Clay Science 50(2): 182-190. Prejsť k pôvodnému zdroju...
  12. HAMDI, K.M., DOĞAN, M., ALKAN, M. 2009. Removal of cationic dyes by Kaolinite. Microporous and Mesoporous Materials 122(1-3): 20-27. Prejsť k pôvodnému zdroju...
  13. ALKAN, M., KALAY, B., DOĞAN, M., DEMIRBAŞ, Ö. 2008. Removal of copper ions from aqueous solutions by Kaolinite and batch design. Journal of Hazardous Materials 153(1-2): 867-876. Prejsť k pôvodnému zdroju...
  14. TEAS, CH., KALLIGEROS, S., ZANIKOS, F., STOUMAS, S., LOIS, E., ANASTOPOULOS, G. 2001. Investigation of the effectiveness of absorbent materials in oil spills clean up. Desalination 140(3): 259-264. Prejsť k pôvodnému zdroju...
  15. GHOSH, D., BHATTACHARYYA, K.G. 2002. Adsorption of methylene blue on Kaolinite. Applied Clay Science 20(6): 295-300. Prejsť k pôvodnému zdroju...
  16. YUKSELEN, Y., KAYA, A. 2003. Zeta Potential of Kaolinite in the Presence of Alkali, Alkaline Earth and Hydrolyzable Metal Ions. Water, Air, and Soil Pollution 145(1-4): 155-168. Prejsť k pôvodnému zdroju...
  17. EL-SHAFEY, E.I., ALI, S.N.F., AL-BUSAFI, S., AL-LAWATI, H.A.J. 2016. Preparation and characterization of surface functionalized activated carbons from date palm leaflets and application for methylene blue removal. Journal of Environmental Chemical Engineering 4(3): 2713-2724. Prejsť k pôvodnému zdroju...
  18. BHATNAGAR, A., HOGLAND, W., MARQUES, M., SILLANPÄÄ, M. 2013. An overview of the modification methods of activated carbon for its water treatment applications. Chemical Engineering Journal 219: 499-511. Prejsť k pôvodnému zdroju...
  19. GHAEDI, M., NASAB, A.G., KHODADOUST, S., RAJABI, M., AZIZIAN, S. 2014. Application of activated carbon as adsorbents for efficient removal of methylene blue: Kinetics and equilibrium study. Journal of Industrial and Engineering Chemistry 20(4): 2317-2324. Prejsť k pôvodnému zdroju...
  20. SILVANI, L., VRCHOTOVA, B., KASTANEK, P., DEMNEROVA, K., PETTITI, I., PETRANGELI PAPINI, M. 2017. Characterizing Biochar as alternative sorbent for oil spill remediation. Science Reports 7: 43912. Prejsť k pôvodnému zdroju...
  21. ASADULLAH, M., ASADUZZAMAN, M., KABIR, M.S., MOSTOFA, M.G., MIYAZAWA, T. 2010. Chemical and structural evaluation of activated carbon prepared from jute sticks for Brilliant Green dye removal from aqueous solution. Journal of Hazardous Materials 174(1-3): 437-443. Prejsť k pôvodnému zdroju...
  22. DU, H., MILLER, J.D. 2007. A molecular dynamics simulation study of water structure and adsorption states at Talc surfaces. International Journal of Mineral Processing 84(1-4). Special Issue to honor the Late Professor R. Peter King: 172-184. Prejsť k pôvodnému zdroju...
  23. WALLQVIST, V., CLAESSON, P.M., SWERIN, A., SCHOELKOPF, J., GANE, P.A.C. 2006. Interaction forces between Talc and hydrophobic particles probed by AFM. Colloids and Surfaces A: Physicochemical and Engineering Aspects 277(1-3): 183-190. Prejsť k pôvodnému zdroju...
  24. SI-FAN, L., SHUANG-CHUN, Y., SHAN-LIN, Z., PING, L., JIN-HUI, Z. 2015. Microwave and acid-modified Talc for the adsorption of Methylene Blue in aqueous solution. Journal of the Serbian Chemical Society 80(4): 563-574. Prejsť k pôvodnému zdroju...
  25. MOYO, F., TANDLICH, R., MADIKIZELA, P., CHIFUNDA, E., WATKINS, G. M. 2016. Sorption of trioctyl amine to Kaolinite. Fresenius Environmental Bulletin 25: 78-88.
  26. NGALLY SABOUANG, C. J., MBEY, J. A., HATERT, F., NJOPWOUO, D. 2015. Talc-based cementitious products: Effect of talc calcination. Journal of Asian Ceramic Societies 3(3): 360-367. Prejsť k pôvodnému zdroju...
  27. ZHU, X., ZHU, Z, LEI, X., YAN, C. 2016. Defects in structure as the sources of the surface charges of kaolinite. Applied Clay Science 124-125: 127-136. Prejsť k pôvodnému zdroju...
  28. KUMAR, A., GUPTA, A., SHARMA, K. V., NASIR, M., KHAN, T. A. 2013. Influence of activated charcoal as filler on the properties of wood composites. International Journal of Adhesion and Adhesives 46:34-39. Prejsť k pôvodnému zdroju...
  29. KAUR, T., THIRUGNANAM, A. 2017. Effect of porous activated charcoal reinforcement on mechanical and in-vitro biological properties of polyvinyl-alcohol composite scaffolds. Journal of Materials Science & Technology 33(7): 734-743 Prejsť k pôvodnému zdroju...
  30. EL QADA, E.N., ALLEN, S.J., WALKER, G.M. 2006. Adsorption of Methylene Blue onto activated carbon produced from steam activated bituminous coal: A study of equilibrium adsorption isotherm, Chemical Engineering Journal 124(1-3): 103-110. Prejsť k pôvodnému zdroju...
  31. NANDI, B.K., GOSWAMI, A., PURKAIT, M.K. 2009. Removal of cationic dyes from aqueous solutions by kaolin: Kinetic and equilibrium studies. Applied Clay Science 42(3-4): 583-590. Prejsť k pôvodnému zdroju...
  32. VARGAS, A.M.M., CAZETTA, A.L., KUNITA, M.H., SILVA, T.L., ALMEIDA, V.C. 2011. Adsorption of methylene blue on activated carbon produced from flamboyant pods (Delonix regia): Study of adsorption isotherms and kinetic models. Chemical Engineering Journal 168(2): 722-730. Prejsť k pôvodnému zdroju...
  33. IQBAL, M.J., ASHIQ, M.N. 2007. Adsorption of dyes from aqueous solutions on Activated charcoal. Charcoal. Journal of Hazardous Materials 139(1): 57-66. Prejsť k pôvodnému zdroju...
  34. TOOR, M., JIN, B. 2012. Adsorption characteristics, isotherm, kinetics, and diffusion of modified natural bentonite for removing diazo dye. Chemical Engineering Journal 187: 79-88. Prejsť k pôvodnému zdroju...
  35. FOO, K.Y., HAMEED, B.H. 2010. Insights into the modeling of adsorption isotherm systems. Chemical Engineering Journal 156(1): 2-10. Prejsť k pôvodnému zdroju...
  36. RIDA, K., BOURAOUI, S., HADNINE. S. 2013. Adsorption of methylene blue from aqueous solution by kaolin and zeolite. Applied Clay Science 83-84: 99-105 Prejsť k pôvodnému zdroju...
  37. KAVITHA, D., NAMASIVAYAM, C. 2007. Experimental and kinetic studies on methylene blue adsorption by coir pith carbon. Bioresource Technology Journal 98: 14-21. Prejsť k pôvodnému zdroju...
  38. RAFATULLAH, M., SULAIMAN, O., HASHIM, R., AHMAD, A. 2010. Adsorption of methylene blue on low-cost adsorbents: A review. Journal of Hazardous Materials 177(1-3): 70-80. Prejsť k pôvodnému zdroju...
  39. WENLE, I.L., SHANLIN, Z., SHUANG, C., JINHUI, Z., PING L., SHUANGCHUN, Y. 2014. Adsorptive characteristics of modified talcum powder in removing methylene blue from wastewater. Chemical Speciation and Bioavailability 26: 167-75. Prejsť k pôvodnému zdroju...
  40. LIU, W., ZHAO, S., CUI, S., YANG, S., SHANG, L. 2013. The research on the adsorptive capability and adsorption isotherm of modified Talcum powder to methylene blue. Advanced Materials Research 610-613. Scopus: 1443-1448. Prejsť k pôvodnému zdroju...
  41. AGARWAL, S., TYAGI, I., GUPTA, V.K., GHASEMI N., SHAHIVAND, M., GHASEMI, M. 2016. Kinetics, equilibrium studies and thermodynamics of methylene blue adsorption on Ephedra strobilacea saw dust and modified using phosphoric acid and zinc chloride. Journal of Molecular Liquids 218: 208-18. Prejsť k pôvodnému zdroju...

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