Crystal structure of the SFCAM phase Ca2(Ca,Fe,Mg,Al)6(Fe,Al,Si)6O20

被引:53
|
作者
Sugiyama, K [1 ]
Monkawa, A [1 ]
Sugiyama, T [1 ]
机构
[1] Univ Tokyo, Grad Sch Sci, Bunkyo Ku, Tokyo 1130033, Japan
关键词
crystal structure; sinter ore; aenigmatite; X-ray diffraction; SFCAM;
D O I
10.2355/isijinternational.45.560
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
The crystal structures of Mg-rich SFCA (SFCAM); Ca-2(Ca0.10Mg1.20Fe5.55Si1.50Al3.65)O-20 (triclinic P (1) over bar, a = 8.848(1) angstrom, b = 9.812(1) angstrom, c = 10.403(1) angstrom, alpha = 64.35(1)degrees, beta = 84.19(1)degrees, gamma = 66.27(1)degrees, V = 742.4(1) angstrom(3), Z = 2) and Ca-2(Mg2.00Fe4.45Si2.15Al3.40)O-20 (triclinic P (1) over bar, a = 8.928(2) angstrom, b = 9.823(2) angstrom, c = 10.389(1) angstrom, alpha = 64.41 (1)degrees, beta = 83.90 (1)degrees, gamma = 65.69 (1)degrees, V = 746.0 (2) angstrom(3), Z = 2) were determined by the single crystal X-ray diffraction. The structure of SFCAM is iso-structural with aenigmatite and well demonstrated by an alternating stacking of the tetrahedral and octahedral layers. The tetrahedral sites of oxygen are occupied either by Fe, Al and Si. The octahedral sites of oxygen are occupied either by Fe, Mg and Al and this feature contrasts with that of the Mg-free SFCA phase where Al prefers tetrahedral sites, only. In particular, Si4+ and Mg2+ prefer the tetrahedral T1, T2 and T4 sites and octahedral M5 and M6 sites, respectively, by producing a structural slab similar to that of aluminous diopside. Such local concentration of divalent Mg2+ and tetravalent Si4+ in the structure of SFCAM is strongly favored in order to compensate the local charge valance. The SFCAM phase indicates the superior structural flexibility for a variety of cations and this feature is promising for the chemical design of the bonding phase in the sinter ore.
引用
收藏
页码:560 / 568
页数:9
相关论文
共 50 条
  • [41] Determination of the crystal structure of diopside (Ca0.8Fe0.2)(Mg0.8Fe0.2)Si2O6 from the Gazakh Trough (Azerbaijan)
    Shirinova, A. F.
    Chiragov, M. I.
    Jafarov, S. E.
    Gasanli, M. R.
    CRYSTALLOGRAPHY REPORTS, 2012, 57 (05) : 742 - 745
  • [42] Determination of the crystal structure of diopside (Ca0.8Fe0.2)(Mg0.8Fe0.2)Si2O6 from the Gazakh Trough (Azerbaijan)
    A. F. Shirinova
    M. I. Chiragov
    S. E. Jafarov
    M. R. Gasanli
    Crystallography Reports, 2012, 57 : 742 - 745
  • [43] Discovery of the Ca4Al2O6Fe2Pn2 "Al-42622(Pn)" and Ca3Al2O5Fe2Pn2 "Al-32522(Pn)" (Pn = As, P) superconductors
    Shirage, P. M.
    Kihou, K.
    Lee, C. H.
    Kito, H.
    Eisaki, H.
    Iyo, A.
    PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS, 2013, 484 : 12 - 15
  • [44] CRYSTAL STRUCTURE OF BREWSTERITE (SR BA CA) )AL2SI6O16).5H2O
    PERROTTA, AJ
    SMITH, JV
    ACTA CRYSTALLOGRAPHICA, 1964, 17 (07): : 857 - &
  • [45] Crystal structure of the π phase in the Al-Si-Mg-Fe system studied by electron channelling
    Foss, S
    Simensen, CJ
    Olsen, A
    Tafto, J
    PHILOSOPHICAL MAGAZINE LETTERS, 2002, 82 (12) : 681 - 686
  • [46] Crystal structure of magnesio-ferri-hornblendite □Ca2(Mg4Fe3+)[(Si7Al)O22](OH)2 as a potentially new mineral of the amphibole supergroup
    E. S. Zarubina
    S. M. Aksenov
    N. V. Chukanov
    R. K. Rastsvetaeva
    Doklady Chemistry, 2016, 470 : 245 - 251
  • [47] ATOMIC ARRANGEMENT OF PELLYITE - BA-2CA(FE,MG)-2SI-6O-17
    MEAGHER, EP
    AMERICAN MINERALOGIST, 1976, 61 (1-2) : 67 - 73
  • [48] FERRIMAGNETIC ORDERING OF Ca2(Fe, Ni) MoO6 PEROVSKITES
    Burzo, E.
    Balasz-Muresan, I.
    ROMANIAN JOURNAL OF PHYSICS, 2017, 62 (1-2):
  • [49] STRUCTURE OF WADALITE CA6AL5SI2O16CL3
    TSUKIMURA, K
    KANAZAWA, Y
    AOKI, M
    BUNNO, M
    ACTA CRYSTALLOGRAPHICA SECTION C-CRYSTAL STRUCTURE COMMUNICATIONS, 1993, 49 : 205 - 207
  • [50] THE CRYSTAL-STRUCTURE AND CRYSTAL-CHEMISTRY OF CA2.3MG0.8AL1.5SI1.1FE8.3O20(SFCA) - SOLID-SOLUTION LIMITS AND SELECTED PHASE-RELATIONSHIPS OF SFCA IN THE SIO2-FE2O3-CAO(-AL2O3) SYSTEM
    HAMILTON, JDG
    HOSKINS, BF
    MUMME, WG
    BORBIDGE, WE
    NEUES JAHRBUCH FUR MINERALOGIE-ABHANDLUNGEN, 1989, 161 (01): : 1 - 26