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The aggregation of methylene blue in montmorillonite dispersions

Published online by Cambridge University Press:  09 July 2018

J. Bujdák*
Affiliation:
National Institute for Materials Science, Namiki 1-1, Tsukuba Ibaraki 305-0044, Japan
N. Iyi
Affiliation:
National Institute for Materials Science, Namiki 1-1, Tsukuba Ibaraki 305-0044, Japan
T. Fujita
Affiliation:
National Institute for Materials Science, Namiki 1-1, Tsukuba Ibaraki 305-0044, Japan
*

Abstract

Theories concerning the optical properties of cationic dyes adsorbed on clay surfaces are analysed in detail. An investigation of the aggregation of methylene blue (MB) in montmorillonite dispersions is conducted using visible (VIS) spectroscopy. The effects of the dye/ clay ratio and of the swelling properties of the montmorillonite substrate on dye aggregation are compared in terms of the effect of clay layer charge. The observed influence on dye aggregation was almost negligible for both swelling and dye loading. The layer charge of the silicate determines the extent and the type of dye aggregation in freshly prepared MB/montmorillonite dispersions. Observed spectral changes with time indicate a rearrangement and redistribution of dye H-aggregates (band close to 570 nm) to monomers (660 nm), dimers (605 nm) and J-aggregates (760 nm). Dye aggregates are probably already formed during dye cation migration in the vicinity of clay colloid particles. The extent and the type of initially formed species are probably affected by the electric double layer of clay layers. After reaching the clay surface, dye cation assemblies are rearranged and decompose as described above. Reaching chemical equilibrium, dye cations adjust the distribution of the layer charge, in order that each cation could balance the charge due to one unequivalent substitution.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2002

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References

Antonov, L., Gergov, G., Petrov, V., Kubista, M. & Nygren, J. (1999) UV-Vis spectroscopic and chemometric study on the aggregation of ionic dyes in water. Talanta, 49, 99106.CrossRefGoogle Scholar
Ardizzone, S., Gabrielli, G. & Lazzari, P. (1993) Adsorption of methylene-blue at solid-liquid and water air interfaces. Colloids and Surfaces A, 76, 149157.Google Scholar
Bergman, K. & O’Konski, C.T. (1963) A spectroscopic study of methylene blue monomer, dimer and complex es with montmoril lonite. Journal of Physical Chemistry, 67, 21692177.Google Scholar
Bhattacharyya, A.K. & Bhattacharya, G. (1996) Chromotropic behaviours of Chalta (Dillenia indica) fruit mucilage polysaccharide towards some cationic dyes. Journal of the Indian Chemical Society, 73, 463466.Google Scholar
Bhattacharyya, A.K., Chakravorty, N.C. & Bhattacharya, G. (1993) J-band induced in pseudoisocyanine by polyanion of high charge density. Journal of the Indian Chemical Society, 70, 769771.Google Scholar
Bose, H. (1987) Environmental effects on dye aggregation/ effect of electrolytes on metachromasy of thiazine dyes. Indian Journal of Chemistry, Section A, 26, 652655.Google Scholar
Braswell, E. (1968) Evidence for the trimerisation in aqueous solutions of methylene blue. Journal of Physical Chemistry, 72, 24772483.Google Scholar
Braswell, E.H. & Lary, J. (1981) Equilibrium-sedimentation studies of some self-associating cationic dyes. Journal of Physical Chemistry, 85, 15731578.CrossRefGoogle Scholar
Breen, C. & Loughlin, H. (1994) The competitive adsorption of methylene blue on to Na-montmorillonite from binary solution with n-alkylammonium surfactants. Clay Minerals, 29, 775783.Google Scholar
Breen, C. & Rock, B. (1994) The competitive adsorption of methylene blue on to montmorillonite from binary solution with thioflavin T, proflavine and acridine yellow, steady state and dynamic studies. Clay Minerals, 29, 179189.CrossRefGoogle Scholar
Bujdák, J. & Komadel, P. (1997) Interaction of methylene blue with reduced charge montmorillonite. Journal of Physical Chemistry B, 101, 90659068.CrossRefGoogle Scholar
Bujdák, J., Janek, M., Madejová, J. & Komadel, P. (1998) Influence of the layer charge density of smectites on the interaction with methylene blue. Journal of the Chemical Society, Faraday Transactio ns, 94, 34873492.Google Scholar
Campbell, D.J., Higgins, D.A. & Corn, R.M. (1990) Molecular second harmonic generation studies of methylene blue chemisorbed onto a sulfur-modified polycrystallin e platinum electrode. Journal of Physical Chemistry, 94, 36813689.CrossRefGoogle Scholar
Cenens, J. & Schoonheydt, R.A. (1988) Visible spectroscopy of methylene blue on hectorite, Laponite B and Barasym in aqueous suspensions. Clays and Clay Minerals, 36, 214224.CrossRefGoogle Scholar
Chang, F.R. & Sposito, G. (1978) The electrical double layer of a disc-shaped clay mineral particle: Effects of electrolyte properties and surface charge density. Journal of Colloid and Interface Science, 178, 555564.CrossRefGoogle Scholar
Chernia, Z., Gill, D. & Yariv, S. (1994) Electric dichroism. The effect of dialysis on the color of crysta l violet adsorb ed to montmorillonite. Langmuir, 10, 39883995.Google Scholar
Clavier, J., Svetlicic, V. & Zutic, V. (1995) Thionine selfassembly on polyoriented gold and sulphur-modified gold electrode. Journal of Electroanalyti cal Chemistry, 386, 157163.CrossRefGoogle Scholar
Cohen, R. & Yariv, S. (1984) Metachromasy in clay minerals. Journal of the Chemical Society, Faraday Transactions 1, 80, 17051712.CrossRefGoogle Scholar
Coine, A.P.P., Neumann, M.G. & Gessner, F. (1998) Time-dependent spectrophotometric study of the interaction of basic dyes with clays. Journal of Colloid and Interface Science, 198, 106112.Google Scholar
Coine, A.P.P., Schmitt, C.C., Neumann, M.G. & Gessner, F. (2000) The effect of added salt on the aggregation of clay particles. Journal of Colloid and Interface Science, 226, 205209.Google Scholar
Dan, P., Willner, I., Dixit, N.S. & Mackay, R.A. (1984) Effects of colloidal SiO2 and cyclodextrins on the aggregation of dyes in aqueous solutions. Journal of the Chemical Society, Perkin Transactions 2, 3, 455460.Google Scholar
Dawidoff, W., Lonow, K.J. & Philipp, B. (1991) Formation, structure and application of complexes of polyelectro lytes and ionic dyes (Review). Complexes between anionic polymers and cationic dyes. Acta Polymerica, 42, 646650.Google Scholar
Ehrl, M., Kindervater, H.W., Deeg, F.W., Braeuchle, C. & Hoppe, R. (1994) Optical spectroscopy of thiazine and oxazine dyes in the cages of hydrated and dehydrated faujasite-type zeolites: Molecular dynamics in a nanostructured environment. Journal of Physical Chemistry, 98, 1175611763.CrossRefGoogle Scholar
Evans, C.E., Song, Q. & Bohn, P.W. (1993) Influence of molecular orientation and proximity on spectroscopic line shape in organic monolayers. Journal of Physical Chemistry, 97, 1230212308.CrossRefGoogle Scholar
Fischer, D., Caseri, W.R. & Hahner, G. (1998) Orientation and electronic structure of ion exchanged dye molecules on mica. An X-ray absorption study. Journal of Colloid and Interface Science, 198, 337346.Google Scholar
Garfinkel-Shweky, D. & Yariv, S. (1997a) The determination of surface basicity of the oxygen planes of expanding clay minerals by acridine orange. Journal of Colloid and Interface Science, 188, 168175.Google Scholar
Garfinkel-Shweky, D. & Yariv, S. (1997b) Metachromasy in clay-dye systems: the adsorption pf acridine orange by saponite. Clay Minerals, 32, 653663.Google Scholar
Gessner, F., Schmitt, C.C. & Neumann, M.G. (1994) Time-dependent spectroscopic study of the interaction of basic dyes with clays. 1. Methylene blue and neutral red on montmorillon ite and hectorite. Langmuir, 10, 37493753.Google Scholar
Grauer, Z., Grauer, G.L., Avnir, D. & Yariv, S. (1987) Metachromasy in clay minerals. Journal of the Chemical Society, Faraday Transactions 1, 83, 16851701.Google Scholar
Hähner, G., Marti, A., Spencer, N.D. & Caseri, W.R. (1996) Orientation and electronic structure of methylene blue on mica: A near edge X-ray absorption structure spectroscopic study. Journal of Physical Chemistry, 104, 77497757.CrossRefGoogle Scholar
Hamai, S. (1985) Complex formation in cationic dyeorganic anion systems in aqueous solution. Bulletin of the Chemical Society of Japan, 58, 20992106.Google Scholar
Higgins, D.A., Byerly, S.K., Abrams, M.B. & Corn, R.M. (1991) Second harmonic generation studies of methylene blue orientation at silica surfaces. Journal of Physical Chemistry, 95, 69846990.CrossRefGoogle Scholar
Higgins, D.A., Reid, P.J. & Barbara, P.F. (1996) Structure and exciton dynamics in J-aggregates studied by polarization-dependent near-field scanning optical microscopy. Journal of Physical Chemistry, 100, 11741180.Google Scholar
Huang, C.Z., Li, Y.F., Deng, S.Y. & Liu, S.R. (1999) Assembly of methylene blue on nucleic acid template as studied by resonance light-scattering technique and determination of nucleic acids of nanogram. Bulletin of the Chemical Society of Japan, 72, 15011508.CrossRefGoogle Scholar
Jacobs, K.Y. & Schoonheydt, R.A. (1999) Spectroscopy of methylene blue-smectite suspension. Journal of Colloid and Interface Science, 220, 103111.Google Scholar
Kobayashi, T. (1996) J-aggregates. World Scientific, Singapore.Google Scholar
Kugel, R.W. (1993) Metachromasy The interactions between dyes and polyelectrolytes in aqueous solutio ns. Advanc ed Chemistry Series, 236, 507533.Google Scholar
Kuhn, H. (2000) π-Electron systems building blocks of supramolecular machines. Colloids and Surfaces A, 171, 312.CrossRefGoogle Scholar
Lewis, G.N. & Bigeleisen, J. (1943) Methylene blue and other indicators in general acids. The acidity function. Journal of the American Chemical Society, 65, 11441150.Google Scholar
Lezna, R.O. , Juanto, S. & Zagal, J.H. (1995) Electrochromism of methylene blue absorbed on the basal plane of graphite. Journal of Electroanalytical Chemistry, 389, 197200.CrossRefGoogle Scholar
Neumann, M.G., Schmitt, C.C. & Gessner, F. (1996) Time-dependent spectroscopic study of the interaction of basic dyes with clays II. Thionine on natural and synthetic montmorillonit es and hectorites. Journal of Colloid and Interface Science, 177, 495501.CrossRefGoogle Scholar
Ono, S.S., Yao, H., Matsuoka, O., Kawabata, R., Kitamura, N. & Yamamoto, S. (1999) Anisotropic growth of J aggregates of pseudoisocyanine dye at a mica/ solution interface revealed by AFM and polarization absorption measurements. Journal of Physical Chemistry B, 103, 69096921.Google Scholar
Pal, M.K. & Mandal, N. (1990) Induction of metachromasia and circular-dichroism in the dye 1,9-dimethyl methylene blue by ATP. Indian Journal of Biochemistry and Biophysics, 27, 108111.Google Scholar
Richards, M.D. & Pope, C.G. (1996) Adsorption of methylene blue from aqueous solutions by amorphous aluminosilicate gels and zeolite X. Journal of the Chemical Society, Faraday Transactions, 92, 317324.CrossRefGoogle Scholar
Schoonheydt, R.A. & Heughebaert, L. (1992) Clay adsorbed dyes: Methylene blue on laponite. Clay Minerals, 27, 91100.Google Scholar
Schramm, L.L. & Kwak, J.C.T. (1982) Influence of exchangeable cation composition on the size and shape of montmorillonite particles in dilute suspension. Clays and Clay Minerals, 30, 4048.Google Scholar
Svetlicic, V., Clavilier, J., Zutic, V., Chevalet, J. & Elachi, K. (1993) Effect of sulphur-adlayer preparation on self-assembled monolayers of phenothiazines at polyori ented platinum-electro des. Journal of Electroanalytical Chemistry, 344, 145160.CrossRefGoogle Scholar
Van Olphen, H. (1950) Stabilization of montmorillonite sols by chemical treatment. Recueil des Travaux Chimiques des Pays-Bas, 69, 13081322.CrossRefGoogle Scholar
Yamaoka, K. & Sasai, R. (2000) Pulsed electric linear dichroism of triphenylmethane dyes adsorbed on montmorillonite K10 in aqueous media. Journal of Colloid and Interface Science, 225, 8293.Google Scholar
Yariv, S. & Lurie, D. (1971) Metachromasy in clay minerals. Part I. Sorption of methylene-blue by montmorillonite. Israel Journal of Chemistry, 9, 537552.CrossRefGoogle Scholar
Yariv, S., Nasser, A. & Bar-on, P. (1990) Metachromasy in clay minerals. Spectroscopic study of the adsorption of crystal violet by laponite. Journal of the Chemical Society, Faraday Transaction s, 86, 15931598.Google Scholar