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volume 4 issue 3 pages 223-242

The structure of denisovite, a fibrous nanocrystalline polytypic disordered ‘very complex’ silicate, studied by a synergistic multi-disciplinary approach employing methods of electron crystallography and X-ray powder diffraction

Enrico Mugnaioli 2, 3
Marco Schowalter 4
Martin U. Schmidt 5
MICHAEL CZANK 6
Wulf Depmeier 6
Andreas Rosenauer 4
Publication typeJournal Article
Publication date2017-03-08
scimago Q1
wos Q1
SJR1.201
CiteScore5.4
Impact factor3.6
ISSN20522525
General Chemistry
Biochemistry
Condensed Matter Physics
General Materials Science
Abstract

Denisovite is a rare mineral occurring as aggregates of fibres typically 200–500 nm diameter. It was confirmed as a new mineral in 1984, but important facts about its chemical formula, lattice parameters, symmetry and structure have remained incompletely known since then. Recently obtained results from studies using microprobe analysis, X-ray powder diffraction (XRPD), electron crystallography, modelling and Rietveld refinement will be reported. The electron crystallography methods include transmission electron microscopy (TEM), selected-area electron diffraction (SAED), high-angle annular dark-field imaging (HAADF), high-resolution transmission electron microscopy (HRTEM), precession electron diffraction (PED) and electron diffraction tomography (EDT). A structural model of denisovite was developed from HAADF images and later completed on the basis of quasi-kinematic EDT data byab initiostructure solution using direct methods and least-squares refinement. The model was confirmed by Rietveld refinement. The lattice parameters area= 31.024 (1),b= 19.554 (1) andc= 7.1441 (5) Å, β = 95.99 (3)°,V= 4310.1 (5) Å3and space groupP12/a1. The structure consists of three topologically distinct dreier silicate chains,viz. two xonotlite-like dreier double chains, [Si6O17]10−, and a tubular loop-branched dreier triple chain, [Si12O30]12−. The silicate chains occur between three walls of edge-sharing (Ca,Na) octahedra. The chains of silicate tetrahedra and the octahedra walls extend parallel to thezaxis and form a layer parallel to (100). Water molecules and K+cations are located at the centre of the tubular silicate chain. The latter also occupy positions close to the centres of eight-membered rings in the silicate chains. The silicate chains are geometrically constrained by neighbouring octahedra walls and present an ambiguity with respect to theirzposition along these walls, with displacements between neighbouring layers being either Δz=c/4 or −c/4. Such behaviour is typical for polytypic sequences and leads to disorder along [100]. In fact, the diffraction pattern does not show any sharp reflections withlodd, but continuous diffuse streaks parallel toa* instead. Only reflections withleven are sharp. The diffuse scattering is caused by (100) nanolamellae separated by stacking faults and twin boundaries. The structure can be described according to the order–disorder (OD) theory as a stacking of layers parallel to (100).

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Rozhdestvenskaya I. V. et al. The structure of denisovite, a fibrous nanocrystalline polytypic disordered ‘very complex’ silicate, studied by a synergistic multi-disciplinary approach employing methods of electron crystallography and X-ray powder diffraction // IUCrJ. 2017. Vol. 4. No. 3. pp. 223-242.
GOST all authors (up to 50) Copy
Rozhdestvenskaya I. V., Mugnaioli E., Schowalter M., Schmidt M. U., CZANK M., Depmeier W., Rosenauer A. The structure of denisovite, a fibrous nanocrystalline polytypic disordered ‘very complex’ silicate, studied by a synergistic multi-disciplinary approach employing methods of electron crystallography and X-ray powder diffraction // IUCrJ. 2017. Vol. 4. No. 3. pp. 223-242.
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RIS Copy
TY - JOUR
DO - 10.1107/S2052252517002585
UR - https://doi.org/10.1107/S2052252517002585
TI - The structure of denisovite, a fibrous nanocrystalline polytypic disordered ‘very complex’ silicate, studied by a synergistic multi-disciplinary approach employing methods of electron crystallography and X-ray powder diffraction
T2 - IUCrJ
AU - Rozhdestvenskaya, I. V.
AU - Mugnaioli, Enrico
AU - Schowalter, Marco
AU - Schmidt, Martin U.
AU - CZANK, MICHAEL
AU - Depmeier, Wulf
AU - Rosenauer, Andreas
PY - 2017
DA - 2017/03/08
PB - International Union of Crystallography (IUCr)
SP - 223-242
IS - 3
VL - 4
PMID - 28512570
SN - 2052-2525
ER -
BibTex |
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@article{2017_Rozhdestvenskaya,
author = {I. V. Rozhdestvenskaya and Enrico Mugnaioli and Marco Schowalter and Martin U. Schmidt and MICHAEL CZANK and Wulf Depmeier and Andreas Rosenauer},
title = {The structure of denisovite, a fibrous nanocrystalline polytypic disordered ‘very complex’ silicate, studied by a synergistic multi-disciplinary approach employing methods of electron crystallography and X-ray powder diffraction},
journal = {IUCrJ},
year = {2017},
volume = {4},
publisher = {International Union of Crystallography (IUCr)},
month = {mar},
url = {https://doi.org/10.1107/S2052252517002585},
number = {3},
pages = {223--242},
doi = {10.1107/S2052252517002585}
}
MLA
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Rozhdestvenskaya, I. V., et al. “The structure of denisovite, a fibrous nanocrystalline polytypic disordered ‘very complex’ silicate, studied by a synergistic multi-disciplinary approach employing methods of electron crystallography and X-ray powder diffraction.” IUCrJ, vol. 4, no. 3, Mar. 2017, pp. 223-242. https://doi.org/10.1107/S2052252517002585.