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Migration of Cations in Copper(II)-Exchanged Montmorillonite and Laponite Upon Heating

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Clays and Clay Minerals

Abstract

Two clay minerals, a dioctahedral, Na-montmorillonite from Wyoming and a trioctahedral, synthetic Na-laponite, were exchanged by cupric (Cu(II)) ions and subsequently heated at 100 °C intervals up to 500 °C. The resulting materials were analyzed by chemical analysis, X-ray diffraction (XRD), cation exchange capacity (CEC) measurements, combined thermogravimetric and differential thermal analysis (TGA-DTA), infrared (IR) spectroscopy, electron paramagnetic resonance (EPR) and X-ray photoelectron spectroscopy (XPS). Montmorillonite exhibits a well-known Hoffmann-Klemen effect in that, when heated, cupric (Cu) ions migrate into the lacunae of the octahedral sheet, where they compensate the negative charge deficit of the clay layer. In the case of laponite, CEC measurements and spectroscopic measurements reveal that Cu ions migrate into the octahedral sheet where they replace Li and Mg ions. After heating at 200 °C, approximately half the interlayer Cu ions are exchanged. The exchange appears to be 1 Cu for 1 Li, resulting in a slight decrease of the negative charge of the layer. After heating at 300 °C, the remaining Cu ions are exchanged by either 1 Mg or 2 Li, which does not result in any further charge reduction. At 400 °C, some of the extracted Mg remigrates into the structure and exchanges some Li (1 Mg for 2 Li). The final product at 400 or 500 °C is then a Li-laponite with Cu(II) in the octahedral sheet.

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References

  • Alvero R, Alba MD, Castro MA, Trillo JM. 1994. Reversible migration of lithium in montmorillonites. J Phys Chem 98: 7848–7853.

    Article  Google Scholar 

  • Bérend I, Cases JM, François M, Uriot JP, Michot L, Masion A, Thomas F. 1995. Mechanism of adsorption-desorption of water vapor by homoionic montmorillonite: 2. The Li+, Na+, K+, Rb+ and Cs+ exchanged forms. Clays Clay Miner 43:324–336.

    Article  Google Scholar 

  • Besson G, Decarreau A, Manceau A, Sanz J, Suquet H. 1990. Organisation interne du feuillet. In: Decarreau A, editor. Matériaux argileux, structure, propriétés, applications. SFMC editions, p 1–162.

    Google Scholar 

  • Brindley GW, Lemaitre J. 1987. Thermal oxidation and reduction reactions of clay minerals. In: Newman ACD, editor. Chemistry of clays and clay minerals. Mineral Soc Monograph 6. p 319–370.

    Google Scholar 

  • Calvet R, Prost R. 1971. Cation migration into empty octahedral sites and surface properties of clays. Clays Clay Miner 19:175–186.

    Article  Google Scholar 

  • Cases JM, Bérend I, Besson G, François M, Uriot JP, Thomas F, Poirier JE. 1992. Mechanism of adsorption-desorption of water vapor by homoionic montmorillonite: 1. The sodium exchanged form. Langmuir 8:2730–2739.

    Article  Google Scholar 

  • Cases JM, Delon JF, François M, Mercier R. 1981. Organisation de l’eau dans les milieux poreux ou concentrés en solides. [Compte-rendu de fin d’étude d’une recherche financée par la Délégation Générale à la Recherche Scientifique et Technique], Nancy, France: INPL. 151 p.

    Google Scholar 

  • Farmer VC, Russell JD. 1971. Interlamellar complexes in layer silicates. The structure of water in lamellar ionic solutions. Trans Faraday Soc 67:2737–2749.

    Article  Google Scholar 

  • Greene-Kelly R. 1953. Irreversible dehydration in montmorillonite. Clay Miner Bull 2:52–56.

    Article  Google Scholar 

  • Greene-Kelly R. 1955. Dehydration of the montmorillonite minerals. Mineral Mag 30:604–615.

    Google Scholar 

  • Heller-Kallai L, Mosser C. 1995. Migration of Cu ions in Cu montmorillonite heated with and without alkali halides. Clays Clay Miner 43:738–743.

    Article  Google Scholar 

  • Hofmann U, Kiemen R. 1950. Verlust der Austauschfähigkeit von Lithium Ionen an Bentonit durch Erhitzung. T Anorg Chemie 262:95–99.

    Article  Google Scholar 

  • Kreit JF, Shainberg I, Herbillon AJ. 1982. Hydrolysis and decomposition of hectorite in dilute salt solutions. Clays Clay Miner 30:223–231.

    Article  Google Scholar 

  • McBride MB. 1982. Hydrolysis and dehydration reactions of exchangeable Cu2+ on hectorite. Clays Clay Miner 30:200–206.

    Article  Google Scholar 

  • McBride MB, Mortland MM. 1974. Copper(II) interactions with montmorillonite: Evidence from physical methods. Soil Sci Soc Am Proc 38:408–414.

    Article  Google Scholar 

  • Mosser C, Mestdagh M, Decarreau A, Herbillon AJ. 1990. Spectroscopic (ESR, EXAFS) evidence of Cu for (Al-Mg) substitution in octahedral sheets of smectites. Clay Miner 25:271–282.

    Article  Google Scholar 

  • Mosser C, Mosser A, Romeo M, Petit S, Decarreau A. 1992. Natural and synthetic copper phyllosilicates studied by XPS. Clays Clay Miner 40:593–599.

    Article  Google Scholar 

  • Petit S. 1990. Etude cristallochimique de kaolinites ferrifères et cuprifères de synthèse (150-250 °C) [Thèse de Doctorat]. Poitiers, France: Univ de Poitiers. 237 p.

    Google Scholar 

  • Petit S, Decarreau A, Mosser C, Ehret G, Grauby O. 1995. Hydrothermal synthesis (250 °C) of copper-substituted kaolinites. Clays Clay Miner 43:482–494.

    Article  Google Scholar 

  • Poinsignon C. 1978. Etude de l’eau d’hydratation des cations compensateurs de la montmorillonite [Thèse Docteur es Sciences]. Nancy, France: INPL. 242 p.

    Google Scholar 

  • Rémy JC, Orsini L. 1976. Utilisation du chlorure de cobal-tihexamine pour la détermination simultanée de la capacité d’échange et des bases échangeables dans les sols. Sciences du Sol 4:269–275.

    Google Scholar 

  • Stadler M, Schindler PW. 1993. Modeling of H+ and Cu2+ adsorption on calcium-montmorillonite. Clays Clay Miner 41:288–296.

    Article  Google Scholar 

  • Wagner CD, Riggs WM, Davis LE, Moulder JF, Muilenberg GE. 1978. Handbook of X-ray photoelectron spectroscopy. Muillenberg GE, editor. Minnesota: Perkin-Elmer Corporation, Physical Electronics Division. 190 p.

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Mosser, C., Michot, L.J., Vlllieras, F. et al. Migration of Cations in Copper(II)-Exchanged Montmorillonite and Laponite Upon Heating. Clays Clay Miner. 45, 789–802 (1997). https://doi.org/10.1346/CCMN.1997.0450603

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  • DOI: https://doi.org/10.1346/CCMN.1997.0450603

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