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Interrelated Features of Structure and Stacking of Kaolin Mineral Layers

Published online by Cambridge University Press:  28 February 2024

B. B. Zvyagin
Affiliation:
Institute of Ore Mineralogy (IGEM), Russian Academy of Sciences Staromonetny 35, 109017 Moscow, Russia
V. A. Drits
Affiliation:
Geological Institute (GIN), Russian Academy of Sciences Pyzhevsky 7, 109017 Moscow, Russia
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Abstract

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Layer stackings in the ideal and real kaolinite structures are considered in terms of layer orientations i = 1, 2, … 6, intra- and interlayer displacements of adjacent 0- and T-sheets, si and tk, distortions of these displacements δ1 and δ2, deviations of unit cell parameters ηi = b2i/a2i − 3, εi = γi − π/2, and normal projections cn of the axis vector c on the ab plane.

The ideal monoclinic angle of dickite (cnx = −1/3) and the deviation α - π/2 ≠ 0 for kaolinite are explained by combinations of the δ1 and δ2 values in the sequence of symbols si and tk defining the corresponding structures. Twenty stacking variants in the 3 successive layers of the kaolinite structure are derived, incorporating layer orientations of the same parity, displacements t+, − = [0, ± 1/3] and reflection operations in planes normal to the axis b3. Two deformation mechanisms are proposed for the accommodation of successive layer unit cells adjusting either angular or linear parameters at the agreement of either linear or angular parameters corresponding.

Type
Research Article
Copyright
Copyright © 1996, The Clay Minerals Society

References

Bailey, S.W.. 1977. Report of the International Mineralogical Association (IMA)—International Union of Crystallography (IUCr) Joint Committee on Nomenclature. Acta Cryst A33: 681684.Google Scholar
Bish, D.L. and von Dreele, R.B.. 1989. Rietveld refinement of non-hydrogen atomic positions in kaolinite. Clays & Clay Miner 37: 289296.CrossRefGoogle Scholar
Bish, D.L.. personal communication. 394 Richard Ct. Los Alamos, NM. 85744.Google Scholar
Bookin, A.S., Drits, V.A., Plançon, A. and Tchoubar, C.. 1989a. Stacking faults in kaolin-group minerals in the light of real structure features. Clays & Clay Miner 37: 297307.CrossRefGoogle Scholar
Bookin, A.S., Drits, V.A., Tcherkashin, V.I. and Salyn, A.L.. 1989b. Comparison of 1: 1 layers of kaolinite and dickite. Minerolog J (in Russian) 11: 1321.Google Scholar
Brindley, G.W.. 1951. Kaolin minerals: Ch. 2. In: Brindley, G.W., editor. X-ray identification and crystal structures of clay minerals. London: Mineralological Society.Google Scholar
Chukhrov, F.V. and Zvyagin, B.B.. 1966. Halloysite, a crystallo-chemically and mineralogically distinct species. Jerusalem: Proc Int'l Clay Conf 1: 1125.Google Scholar
Drits, V.A.. 1987. The nature of defects and structural features of layer silicates. Lecture-conferencias. Euroclay VI, Spain, Seville. p 4362.Google Scholar
Guinier, A.. 1984. Report of the International Union of Crystallography Ad-Hoc Committee on the Nomenclature of disordered, modulated and polytype structures. Acta Cryst A40: 399404.Google Scholar
Pauling, L.. 1929. The principles determining the structures of complex ionic crystals. J Am Chem Soc 51: 1010.CrossRefGoogle Scholar
Pauling, L.. 1930. The structure of chlorites. Proc Nat'l Acad Soc U.S.A. 16: 578582.CrossRefGoogle ScholarPubMed
Plançon, A., Giese, R.F., Snyder, R., Drits, V.A. and Bookin, A.S.. 1989. Stacking faults in the kaolin-group minerals. The defect structures of kaolinite. Clays & Clay Miner 37: 203210.CrossRefGoogle Scholar
Plançon, A. and Tchoubar, C.. 1977. Determination of structural defects in phyllosilicates by X-ray diffraction—II. Nature and proportion of defects in natural kaolinites. Clays & Clay Miner 25: 436450.CrossRefGoogle Scholar
Rozhdestvenskaya, I.V., Drits, V.A., Bookin, A.S. and Finko, V.I.. 1982. Location of protons and structural peculiarities of dickite. Minerolog J (in Russian) 4: 5258.Google Scholar
Zheng, H. and Bailey, S.W.. 1994. Refinement of the nacrite structure. Clays & Clay Miner 42: 4652.CrossRefGoogle Scholar
Zvyagin, B.B.. 1962. Polymorphism of the double-layer minerals of the kaolinite type. Soviet Phys Crystall 7: 3851.Google Scholar
Zvyagin, B.B.. 1964. Electron diffraction analysis of clay mineral structures. Moscow: Nauka. (translation, 1967, New York: Plenum Press.) 364 p.Google Scholar
Zvyagin, B.B., Soboleva, S.V. and Fedotov, A.F.. 1972. Refinement of the structure of nacrite by high-voltage electron diffraction. Soviet Phys Crystall 17: 448452.Google Scholar
Zvyagin, B.B., Vrublevskaya, Z.V., Zhukhlistov, A.P., Sidorenko, O.V., Soboleva, S.V. and Fedotov, A.F.. 1979. High-voltage electron diffraction in the study of layer minerals. Moscow: Nauka. 224 p.Google Scholar