Hostname: page-component-586b7cd67f-rcrh6 Total loading time: 0 Render date: 2024-11-30T19:32:56.383Z Has data issue: false hasContentIssue false

On the destruction of kaolinite and gibbsite by phenylphosphonic, phenylphosphinic and phenylarsonic acids: evidence for the formation of new Al compounds

Published online by Cambridge University Press:  09 July 2018

J. E. F. C. Gardolinski*
Affiliation:
Institute of Inorganic Chemistry, University of Kiel, D-24098 Kiel, Germany
G. Lagaly
Affiliation:
Institute of Inorganic Chemistry, University of Kiel, D-24098 Kiel, Germany
M. Czank
Affiliation:
Institute of Geosciences, Department of Mineralogy, University of Kiel, D-24098 Kiel, Germany
*

Abstract

Kaolinite and synthetic γ-Al(OH)3 (gibbsite or hydrargillite) were reacted with phenylphosphonic, phenylphosphinic and 2-nitrophenol-4-arsonic acids. The products were studied by powder X-ray diffraction, transmission electron microscopy/selected area electron diffraction/ energy dispersive X-ray/Fourier transform infrared and simultaneous thermogravimetric/differential thermal analysis. The acids were not intercalated but, instead, easily destroyed the structure of the minerals. Lamellar Al phenylphosphonate and aluminium phenylphosphinate and phenylarsonate with polymeric linear-chain structures were formed from kaolinite. The reaction between gibbsite and the same acids yielded almost identical products. No evidence of formation of grafted kaolinite derivatives after the reaction with phenylphosphonic acid was found.

Type
Research Article
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2004

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Balan, E., Saita, A.M., Mauri, F. & Calas, G. (2001) Firstprinciples modeling of the infrared spectrum of kaolinite. American Mineralogist, 86, 1321–1330.Google Scholar
Bougeard, D., Smirnov, K.S. & Geidel, E. (2000) Vibrational spectra and structure of kaolinite: a computer simulation study. Journal of Physical Chemistry B, 104, 92109217.Google Scholar
Brandt, K.B., Elbokl, T.A. & Detellier, C. (2003) Intercalation and interlamellar grafting of polyols in layered aluminosilicates. D-Sorbitol and adonitol derivatives of kaolinite. Journal of Materials Chemistry, 13, 25662572.Google Scholar
Breen, C., D'Mello, N. & Yarwood, J. (2002) The thermal stability of mixed phenylphosphonic acid/water intercalates of kaolin and halloysite. A TG-EGA and VT-DRIFTS study. Journal of Materials Chemistry, 12, 273–278.Google Scholar
Breitinger, D.K., Mohr, J., Colognesi, D., Parker, S.F., Schukow, H. & Schwab, R.G. (2001) Vibrational spectra of augelites A12(OH)3(XO)4 (X = P, As, V). Journal of Molecular Structure, 563-564, 377–382.Google Scholar
Cabeza, A., Aranda, M.A.G., Bruque, S., Poojary, D.M., Clearfield, A. & Sanz, J. (1998) Aluminum phenylphosphonates: a fertile family of compounds. Inorganic Chemistry, 37, 4168–4178.Google Scholar
Cesteros, Y., Salagre, P., Medina, F. & Sueiras, J.E. (1999) Several factors affecting faster rates of gibbsite formation. Chemistry of Materials, 11, 123—129.Google Scholar
Cesteros, Y., Salagre, P., Medina, F. & Sueiras, J.E. (2001) A new route to the synthesis of fine-grained gibbsite. Chemistry of Materials, 13, 25952600.Google Scholar
Chaplais, G., Bideau, J.L., Leclercq, D., Mutin, H. & Vioux, A. (2000) Novel aluminium phenyl, benzyl, and bromobenzylphosphonates: structural characterization and hydration-dehydration reactions. Journal of Materials Chemistry, 10, 15931601.Google Scholar
Colamarino, P., Orioli, P.L., Benzinger, W.D. & Gillman, H.D. (1976) Synthesis, properties, and structural characterization of lead(II) bis(diphenylphosphinate), Pb[OP(C6H5)2O]2 . Inorganic Chemistry, 15, 800804.Google Scholar
Costanzo, P.M., Clemency, C.V. & Giese, R.F. Jr. (1980) Low temperature synthesis of a 10-A hydrate of kaolinite using dimethylsulfoxide and ammonium fluoride. Clays and Clay Minerals, 28, 155–156.Google Scholar
Costanzo, P.M., Giese, R.F. Jr. & Clemency, C.V. (1984) Synthesis of a 10-Å hydrated kaolinite. Clays and Clay Minerals, 32, 29–35.Google Scholar
Cunningham, D., Hennelly, P.J.D. & Deeney, T. (1979) Divalent metal phenylphosphonates and phenylarsonates. Inorganica Chimica Acta, 37, 95–102.Google Scholar
Frost, R.L. (1995) Fourier transform Raman spectroscopy of kaolinite, dickite and halloysite. Clays and Clay Minerals, 43, 191195.Google Scholar
Frost, R.L., Tran, T.H. & Kristof, J. (1997) The structure of an intercalated ordered kaolinite—a Raman microscopy study. Clay Minerals, 32, 587–596.Google Scholar
Frost, R.L., Kloprogge, J.T., Russel, S.C. & Szetu, J.L. (1999) Vibrational spectroscopy and dehydroxylation of aluminum (oxo)hydroxides: gibbsite. Applied Spectroscopy, 53, 423–434.Google Scholar
Giordano, F., Randaccio, L. & Ripamonti, A. (1969) The crystal structures of the monoclinic and orthorhombic forms of a zinc(II) n-butylphenylphosphinate polymer. Ada Crystallographica, B25, 1057–1065.Google Scholar
Grohol, D., Gingl, F. & Clearfield, A. (1999) Syntheses and crystal structures of a linear-chain uranyl phenylphosphinate UO2(O2PHC6H5)2 and layered uranyl methylphosphonate UO2(O3PCH3). Inorganic Chemistry, 38, 751–756.Google Scholar
Guimarães, J.L., Peralta-Zamora, P. & Wypych, F. (1998) Covalent grafting of phenylphosphonate groups onto the interlamellar aluminol surface of kaolinite. Journal of Colloid and Interface Science, 206, 281287.Google Scholar
Guimarães, J.L., Cunha, C.J. & Wypych, F. (1999) Intercalation of hexylamine into hydrated kaolinite phenylphosphonate. Journal of Colloid and Interface Science, 218, 211216.Google Scholar
Haky, J.E., Brady, J.B., Dando, N. & Weaver, D. (1997) Synthesis and structural studies of layered aluminum phenylphosphonate. Materials Research Bulletin, 32, 297–303.Google Scholar
Huan, G., Johnson, J.W., Jacobson, A.J. & Merola, J.S. (1990) Hydrothermal synthesis and single-crystal structural characterization of V2O4(C6H5 AsO3H)·H2O. Chemistry of Materials, 2, 719–723.Google Scholar
Itagaki, T. & Kuroda, K. (2003) Organic modification of the interlayer surface of kaolinite with propanediols by transesterification. Journal of Materials Chemistry, 13, 1064–1068.Google Scholar
Kloprogge, J.T., Ruan, H.D. & Frost, R.L. (2002) Thermal decomposition of bauxite minerals: infrared emission spectroscopy of gibbsite, boehmite and diaspore. Journal of Materials Science, 37, 1121–1129.Google Scholar
Komori, Y., Enoto, H., Takenawa, R., Hayashi, S., Sugahara, Y. & Kuroda, K. (2000) Modification of the interlayer surface of kaolinite with methoxy groups. Langmuir, 16, 5506–5508.Google Scholar
Lagaly, G. & Jasmund, K. (1993) Tonminerale und Tone: Struktur, Eigenschaften und Einsatz in Industrie und Umwelt. Steinkopff, Darmstadt, Germany.Google Scholar
Li, N. & Xiang, S. (2002) Hydrothermal synthesis and crystal structure of two novel aluminophosphites containing infinite Al-O-Al chains. Journal of Materials Chemistry, 12, 1397–1400.Google Scholar
Morizzi, J., Hobday, M. & Rix, C. (2000) Synthesis and characterization of a series of lamellar gallium and indium phosphonates and related compounds. Journal of Materials Chemistry, 10, 1693–1697.Google Scholar
Nakamoto, K. (1986) Infrared and Raman Spectra of Inorganic and Coordination Compounds, 4th edition. John Wiley & Sons, New York.Google Scholar
Olejnik, S., Aylmore, L.A.G., Posner, A.M. & Quirk, J.P. (1968) Infrared spectra of kaolin mineral-dimethyl sulfoxide complexes. The Journal of Physical Chemistry, 72, 241–249.Google Scholar
Raki, L. & Detellier, C. (1996) Lamellar organominerals: intercalation of phenylphosphonate into the layers of bayerite. Chemical Communications, 21, 2475–2476.Google Scholar
Raythatha, R. & Lipsicas, M. (1985) Mechanism of synthesis of a 10-Å hydrated kaolinite. Clays and Clay Minerals, 33, 333–339.Google Scholar
Ruan, H.D., Frost, R.L. & Kloprogge, J.T. (2001) Comparison of Raman spectra in characterizing gibbsite, bayerite diaspore and boehmite. Journal of Raman Spectroscopy, 32, 745–750.Google Scholar
Sánchez-Camazano, M. & Sánchez-Martín, M.J. (1994) Trimethyl phosphate induced decomposition of kaolinite. Clays and Clay Minerals, 42, 221–225.Google Scholar
Santos, P.S. (1989) Ciência e Tecnologia de Argilas, Vol.1. Edgard Blücher, São Paulo.Google Scholar
Shieh, M., Martin, K.J., Squattrito, P.J. & Clearfield, A. (1990) New low-dimensional zinc compounds containing zinc-oxygen-phosphorus frameworks: twolayered inorganic phosphites and a polymeric organic phosphinate. Inorganic Chemistry, 29, 958–963.Google Scholar
Thomas, L.C. & Chittenden, R.A. (1970) Characteristic infrared absorption frequencies of organophosphorus compounds—VII. Phosphorus ions. Spectrochimica Ada, 26A, 781800.Google Scholar
Trobajo, C. Khainakov, S.A., Espina, A., García, J.R., Salvado, M.A., Pertierra, P., García-Granada, S., Martín-Izard, A. & Bortun, A.I. (2001) Synthesis of a mineral-organic hybrid by treatment of phlogopite with phenylphosphonic acid. Chemistry of Materials, 13, 4457–4462.Google Scholar
Tunney, J.J. & Detellier, C. (1993) Interlamellar covalent grafting of organic units on kaolinite. Chemistry of Materials, 5, 747–748.Google Scholar
Tunney, J.J. & Detellier, C. (1994a) Preparation and characterization of an 8.4 A hydrate of kaolinite. Clays and Clay Minerals, 42, 473–476.Google Scholar
Tunney, J.J. & Detellier, C. (1994b) Preparation and characterization of two distinct ethylene glycol derivatives of kaolinite. Clays and Clay Minerals, 42, 552–560.Google Scholar
Tunney, J.J. & Detellier, C. (1996) Chemically modified kaolinite. Grafting of methoxy groups on the interlamellar aluminol surface of kaolinite. Journal of Materials Chemistry, 6, 1679–1685.Google Scholar
Tunney, J.J. & Detellier, C. (1997) Interlamellar amino functionalization of kaolinite. Canadian Journal of Chemistry, 75, 1766–1772.Google Scholar
Wada, K. (1961) Lattice expansion of kaolin minerals by treatment with potassium acetate. American Mineralogist, 46, 78–91.Google Scholar
Wang, S.L. & Johnston, C.T. (2000) Assignment of the structural OH stretching bands of gibbsite. American Mineralogist, 85, 739–744.Google Scholar
Weiss, A. (1961) Eine SehiehteinsehluBverbindung von Kaolinit mit Harnstoff. Angewandte Chemie, 73, 736.Google Scholar
Weiss, A., Thielepape, W., Ritter, W., Schäfer, H. & Göring, G. (1963) Zur Kenntnis von Hydrazin-Kaolinit. Zeitschrift für anorganische und allgemeine Chemie, 320, 183204.Google Scholar
Weiss, A., Gossner, U. & Robl, C. (1995) Transformation of clay minerals into taranakite and the crystal structure of taranakite. Proceedings of the 10th International Clay Conference, pp. 253—259.Google Scholar
Wypych, F., Gardolinski, J.E. & Cantão, M.P. (2001) Esfoliação e hidratacao da caulinita após intercalação com uréia. Química Nova, 24, 761–767.Google Scholar
Wypych, F., Schreiner, W.H., Mattoso, N., Mosca, D.H., Marangoni, R. & Bento, C.A. da S. (2003) Covalent grafting of phenylphosphonate groups onto layered silica derived from in-situ leached chrysotile fibers. Journal of Materials Chemistry, 13, 304–307.Google Scholar
Zakowski, N., Hix, G.B. & Morris, R.E. (2000) Synthesis of a family of aluminium benzylphosphonates. Journal of Materials Chemistry, 10, 2375–2380.Google Scholar