Dmisteinbergite, CaAl2Si2O8, a Metastable Polymorph of Anorthite: Crystal-Structure and Raman Spectroscopic Study of the Holotype Specimen

被引:22
|
作者
Zolotarev, Andrey A. [1 ]
Krivovichev, Sergey, V [1 ,2 ]
Panikorovskii, Taras L. [1 ,3 ]
Gurzhiy, Vladislav V. [1 ]
Bocharov, Vladimir N. [4 ]
Rassomakhin, Mikhail A. [5 ]
机构
[1] St Petersburg State Univ, Inst Earth Sci, Dept Crystallog, Univ Emb 7-9, St Petersburg 199034, Russia
[2] Russian Acad Sci, Nanomat Res Ctr, Kola Sci Ctr, Fersmana 14, Apatity 184209, Russia
[3] Russian Acad Sci, Kola Sci Ctr, Lab Nat Inspired Technol & Environm Safety Arctic, Fersmana 14, Apatity 184209, Russia
[4] St Petersburg State Univ, Geo Environm Ctr Geomodel, Ulyanovskaya Str 1, St Petersburg 198504, Russia
[5] South Urals Fed Res Ctr Mineral & Geoecol UB RAS, Miass 456317, Russia
基金
俄罗斯科学基金会; 俄罗斯基础研究基金会;
关键词
dmisteinbergite; feldspar; polymorphism; metastability; burned coal dumps; Kopeisk; Ural region; crystal structure; Raman spectroscopy; HEXAGONAL CAAL2SI2O8; CAO-AL2O3-SIO2; GLASS; COMPLEXITY; KUMDYKOLITE; MINERALS; STABILITY; FELDSPAR; MASSIF; ORIGIN; GROWTH;
D O I
10.3390/min9100570
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The crystal structure of dmisteinbergite has been determined using crystals from the type locality in Kopeisk city, Chelyabinsk area, Southern Urals, Russia. The mineral is trigonal, with the following structure: P312, a = 5.1123(2), c = 14.7420(7) angstrom, V = 333.67(3) angstrom(3), R-1 = 0.045, for 762 unique observed reflections. The most intense bands of the Raman spectra at 327s, 439s, 892s, and 912s cm (-1) correspond to different types of tetrahedral stretching vibrations: Si-O, Al-O, O-Si-O, and O-Al-O. The weak bands at 487w, 503w, and 801w cm(-1) can be attributed to the valence and deformation modes of Si-O and Al-O bond vibrations in tetrahedra. The weak bands in the range of 70-200 cm(-1) can be attributed to Ca-O bond vibrations or lattice modes. The crystal structure of dmisteinbergite is based upon double layers of six-membered rings of corner-sharing AlO4 and SiO4 tetrahedra. The obtained model shows an ordering of Al and Si over four distinct crystallographic sites with tetrahedral coordination, which is evident from the average <T-O> bond lengths (T = Al, Si), equal to 1.666, 1.713, 1.611, and 1.748 angstrom for T1, T2, T3, and T4, respectively. One of the oxygen sites (O4) is split, suggesting the existence of two possible conformations of the [Al2Si2O8](2-) layers, with different systems of ditrigonal distortions in the adjacent single layers. The observed disorder has a direct influence upon the geometry of the interlayer space and the coordination of the Ca2 site. Whereas the coordination of the Ca1 site is not influenced by the disorder and is trigonal antiprismatic (distorted octahedral), the coordination environment of the Ca2 site includes disordered O atoms and is either trigonal prismatic or trigonal antiprismatic. The observed structural features suggest the possible existence of different varieties of dmisteinbergite that may differ in: (i) degree of disorder of the Al/Si tetrahedral sites, with completely disordered structure having the P6(3)/mcm symmetry; (ii) degree of disorder of the O sites, which may have a direct influence on the coordination features of the Ca2+ cations; (iii) polytypic variations (different stacking sequences and layer shifts). The formation of dmisteinbergite is usually associated with metastable crystallization in both natural and synthetic systems, indicating the kinetic nature of this phase. Information-based complexity calculations indicate that the crystal structures of metastable CaAl2Si2O8 polymorphs dmisteinbergite and svyatoslavite are structurally and topologically simpler than that of their stable counterpart, anorthite, which is in good agreement with Goldsmith's simplexity principle and similar previous observations.
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页数:12
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