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Tytuł artykułu

Investigation of adsorption behavior of phosphonium salts onto Na-montmorillonite

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Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Montmorillonite is an important clay mineral due to its cation exchange capacity and technological properties such as swelling and gelling. It has been widely used in many scientific applications like organoclay. Adsorption studies, involving montmorillonite in the presence of variety of organic compounds, like ammonium and phosphonium salts, are very important because of their application in organoclay and polymer nanocomposites. These materials have a high thermal resistivity. Different types of phosphonium salts, including hexadecyl triphenyl phosphonium bromide (HTPB), hexadecyl tributyl phosphonium bromide (HTBPB), and tetraphenyl phosphonium bromide (TPB), were used to investigate their adsorption on Na-montmorillonite. They have different structures and TPB contains only one aromatic part without any organic chain, HTBPB possess an organic chain with three branches while HTPB has an organic chain and an aromatic part. The adsorption of the surfactants was supplemented with other properties such as zeta potential, surface tension, and ability to flocculation. The results indicated that the adsorption behavior of these surfactants depended on their structure.
Słowa kluczowe
Rocznik
Strony
417--432
Opis fizyczny
Bibliogr. 35 poz., rys., tab.
Twórcy
autor
  • Istanbul University, Engineering Faculty, Mining Engineering Department, 34320, Avcilar, Istanbul, Turkey
autor
  • Istanbul University, Engineering Faculty, Mining Engineering Department, 34320, Avcilar, Istanbul, Turkey
Bibliografia
  • 1. ABATE L., BLANCO I., BOTTINO F.A., DI PASQUALE G., FABBRI E., ORESTANO A., POLLICINO A., 2008, Kinetic study of the thermal degregation of PS/MMT nanocomposites prepared with imidazolium surfactants, Journal of Thermal Analysis and Calorimetry, 91(3), 681–686.
  • 2. ABDALLAH W., YILMAZER U., 2013, Preparation and characterization of thermally stable phosphonium organoclays and their use in poly(ethylene terephthalate) nanocomposites, Journal of Applied Polymer Science, DOI: 10.1002/APP.38651.
  • 3. ASTM C 837, 2003, Standart test method for methylene blue index of clay, ASTM International, 2, USA.
  • 4. AWAD W.H., GILMAN J.W., NYDENA M., HARRIS R.H., SUTTO JR. T.E., CALLAHAN J., TRULOVE P.C., DELONGC H., C., FOX D.M., 2004, Thermal degradation studies of alkyl-imidazolium salts and their application in nanocomposites, Thermochimica Acta, 409, 3–11.
  • 5. BERGAYA F., THENG B.K.G., LAGALY G. (Eds.), 2006, Handbook of Clay Science, Elsevier, Amsterdam.
  • 6. BYRNE C., MCNALLY T., 2007, Ionic liquid modification of layered silicates for enhanced thermal stability, Macromolecular Rapid Communications, 28, 780–784.
  • 7. CALDERON J.U., LENNOX B., KAMAL M.R., 2008, Thermally stable phosphonium-montmorillonite organoclays, Applied Clay Science, 40, 90–98.
  • 8. FREUNDLICH H., 1926, Colloid and Capillary Chemistry, Methuen, London.
  • 9. GILMAN J.W., JACKSON C.L., MORGAN A.B., HARRIS JR. R. H., 2000, Flammability properties of polymer-layered-silicate nanocomposites, polypropylene and polystyrene nanocomposites, Chemistry of Materials, 12, 1866–1873.
  • 10. GRIM R. E., 1968, Clay Mineralogy, Mc Graw Hill Company, New York, USA.
  • 11. HARTWIG A., PUTZ D., SCHARTEL B., BARTHOLMAI M., WENDSCHUH-JOSTIES M., 2003, Combustion behaviour of epoxide based nanocomposites with ammonium and phosphonium bentonites, Macromolecular Chemistry and Physics, 204(18), 2247–2257
  • 12. KAREEM M.A., MJALLI F.S., HASHIM M.A., ALNASHEF I.M., 2012, Liquid–liquid equilibria for the ternary system (phosphonium based deep eutectic solvent–benzene–hexane) at different temperatures: a new solvent introduced, Fluid Phase Equilibria, 314, 52–59.
  • 13. LAGALY 1986, Interaction of alkylamines with different types of layered compounds, Solid State Ionics, 22, 43–51.
  • 14. LAGALY G., 1993, Praktische verwendung und einsatzmöglichkeiten von tonen. In tonminerale und tone: struktur, eigenschaften, anwendung und einsatz in industrie und umwelt (ed. K. JASMUND and G. LAGALY), 89–167, 358–427, Steinkopff Verlag.
  • 15. LAGALY G., ZIESMER, 2003, Colloid chemistry of clay minerals: the coagulation of montmorillonite dispersions, Advances in Colloid and Interface Science, vol. 100–102, 105–128.
  • 16. LANGMUIR I., 1916, The constitution and fundemental properties of solids and liquids, Journal of American Chemistry Society, 38, 2221–2232.
  • 17. LEBARON P.C., WANG Z., PINNAVAIA T.J., 1999, Polymer-layered silicate nanocomposites: an overview, Applied Clay Science, 15, 11–29.
  • 18. MESSERSMITH P.B., GIANNELIS E.P., 1995, Synthesis and barrier properties of poly(e-capro1actone)-layered silicate nanocomposites, Journal of Polymer Science: Part A: Polymer Chemistry, 33, 1047–1057.
  • 19. MITTAL V., 2009, Polymer Layered Silicate Nanocomposites: A Review. Materials, 2, 992–1057.
  • 20. MITTAL V., 2012. Modification of montmorillonites with thermally stable phosphonium cations and comparison with alkylammonium montmorillonites, Applied Clay Science, 56, 103–109.
  • 21. OKADA A., USUKI A., 2006. Twenty years of polymer-clay nanocomposites, Macromolecular Materials and Engineering, 291, 1449–1476,
  • 22. OSMAN, M.A. MITTAL, V., SUTER, U.W., 2007, Poly(propylene)-layered silicate nanocomposites: gas permeation properties and clay exfoliation, Macromolecular Chemistry and Physics, 208, 68–75.
  • 23. PATEL SOMANI R.S., BAJAJ H.C., JASRA R.V., 2006, Nanoclays for polymer nanocomposites, paints, inks, greases and cosmetics formulations, drug delivery vehicle and waste water treatment, Bulletin of Materials Science, 29(2), 133–145.
  • 24. PATEL H.A., SOMANI R.S., BAJAJ H.C., JASRA R.V., 2007, Preparation and characterization of phosphonium montmorillonite with enhanced thermal stability, Applied Clay Science, 35, 194–200.
  • 25. PATRO T.U., KHAKHAR D.V., MISRA A., 2009, Phosphonium-based layered silicate-poly(ethylene terephthalate) nanocomposites: stability, thermal and mechanical properties, Journal of Applied Polymer Science, 113, 1720–1732.
  • 26. RAY S.S., OKAMOTO R., 2003, Polymer/layered silicate nanocomposites; a review from preparation to processing, Prog. Polym. Sci. 28, 1539–1641.
  • 27. SILVA A.A., DAHMOUCHE K., SOARES B.G., 2011, Nanostructure and dynamic mechanical properties of silane-functionalized montmorillonite/epoxy nanocomposites, Applied Clay Science, 54, 151–158.
  • 28. SON S.Y., GONG M.S., 2002, Polymeric humidity sensor using phosphonium salt-containing polymers, Sensors and Actuators B, 86, 168–173.
  • 29. SONDI I., MILAT O., PRAVDIC V., 1997, J. Colloid Interface Sci. 189, 66.
  • 30. USUKI A., KOJIMA Y., KAWASUMI M., OKADA A., FUKUSHIMA Y., KURAUCHI T., KAMIGAITO O., 1993, Synthesis of nylon 6-clay hybrid, J. Mater. Res., 8(5), 1179–1184.
  • 31. WU T., XIE A.-G., TAN S.-Z., CAI X., 2011, Antimicrobial effects of quaternary phosphonium salt intercalated clay minerals on Escherichia coli and Staphylococci aureus, Colloids and Surfaces B: Biointerfaces, 86, 232–236.
  • 32. VAN OLPHEN H., 1977, An introduction to clay colloid chemistry, 2nd ed., Interscience, NY, 318.
  • 33. VERMA S.K, GHOSH K.K., 2011, Micellar and Surface Properties of Some Monomeric Surfactants and a Gemini Cationic Surfactant, Journal of Surfactants and Detergents, 14(3), 347–352.
  • 34. XIE W., GAO Z., LIU K., PAN W.-P., VAIA R., HUNTER D., SINGH A., 2001, Thermal characterization of organically modied montmorillonite, Thermochimica Acta, 367–368, 339–350.
  • 35. XIE W., XIE R., PAN W.-P., HUNTER D., KOENE B., TAN L.-S., VAIA R., 2002, Thermal stability of quaternary phosphonium modified montmorillonites, Chemical Materials, 14, 4837–4845.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ec09b69d-7052-4828-b240-9357423d4b36
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