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Topotaxial reactions during the genesis of oriented rutile/hematite intergrowths from Mwinilunga (Zambia)
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  • 作者:Aleksander Re?nik ; Nade?da Stankovi?…
  • 关键词:Ilmenite ; Hematite ; Rutile ; Topotaxy ; Exsolution ; Intergrowth ; Geothermometer
  • 刊名:Contributions to Mineralogy and Petrology
  • 出版年:2015
  • 出版时间:February 2015
  • 年:2015
  • 卷:169
  • 期:2
  • 全文大小:7,209 KB
  • 参考文献:1. Amami B, Addou M, Millot F, Sabioni A, Monty C (1999) Self diffusion in α-Fe2O3 natural single crystals. Ionics 5:358-70 CrossRef
    2. Ariskin AA, Barmina GS (1999) An empirical model for the calculation of spinel-melt equilibria in mafic igneous systems at atmospheric pressure: 2. Fe–Ti oxides. Contrib Mineral Petrol 134:251-63 CrossRef
    3. Armbruster T (1981) On the origin of sagenites: structural coherency of rutile with hematite and spinel structure types. Neues Jb Miner Mn 7:328-34
    4. Banfield JF, Veblen DR (1991) The structure and origin of Fe-bearing platelets in metamorphic rutile. Am Min 76:113-27
    5. Bateman AM (1951) The formation of late magmatic oxide ores. Econ Geol 46:404-26 CrossRef
    6. Blake RL, Hessevick RE, Zoltai T, Finger LW (1966) Refinement of the hematite structure. Am Min 51:23-29
    7. Bollman W (1970) Crystal defects and crystalline interfaces. Springer, Berlin CrossRef
    8. Buddington AF, Lindsley DH (1964) Iron–titanium oxide minerals and synthetic equivalents. J Petrol 5:310-57 CrossRef
    9. Burton BP (1985) Theoretical analysis of chemical and magnetic ordering in the system Fe2O3–FeTiO3. Am Min 70:1027-035
    10. Carmichael CM (1961) The magnetic properties of ilmenite–hematite crystals. Proc R Soc Lond A 263:508-30 CrossRef
    11. Carmichael CM, Nichols (1967) Iron-titanium oxides and oxygen fugacities in volcanic rocks. J Geophys Res 72:4665-687 CrossRef
    12. Daneu N, Re?nik A (2012) The atomic-scale aspects of twinning and polytypism in minerals. Acta Mineral Petrogr. Abstract Series 7:32-7
    13. Daneu N, Schmid H, Re?nik A, Mader W (2007) Atomic structure and formation mechanism of (301) rutile twins from Diamantina (Brazil). Am Min 92:1789-799 CrossRef
    14. Daneu N, Re?nik A, Mader W (2014) Atomic structure and formation mechanism of (101) rutile twins from Diamantina (Brazil). Am Min 99:612-24 CrossRef
    15. Dent Glasser LS, Glasser FP, Taylor HFW (1962) Topotactic reactions in inorganic oxy-compounds. Q Rev Chem Soc 16:343-60 CrossRef
    16. Duchesne JC (1999) Fe–Ti deposits in Rogaland anorthosites (South Norway): geochemical characteristics and problems of interpretation. Miner Deposita 34:182-98 CrossRef
    17. Force ER, Richards RP, Scott KM, Valentine PC, Fishman NS (1996) Mineral intergrowths replaced by ‘elbow-twinned-rutile in altered rocks. Can Mineral 34:605-14
    18. Ghiorso MS (1990) Thermodynamic properties of hematite–ilmenite–geikielite solid solutions. Contr Mineral Petrol 104:645-67 CrossRef
    19. Grambling JA (1986) A regional gradient in the composition of metamorphic fluids in pelitic schist, Pecos Baldy, New Mexico. Contrib Mineral Petrol 94:149-64 CrossRef
    20. Haggerty SE (1971) Oxide textures—a mini atlas. In: Lindsley DH (ed) Oxide minerals: petrologic and magnetic significance. Rev Mineral 25:129-19
    21. Hallstr?m S, H?glund L, ?gren J (2011) Modeling of iron diffusion in the iron oxides magnetite and hematite with variable stoichiometry. Acta Mater 59:53-0 CrossRef
    22. Harrison JR, Becker U, Redfern SAT (2000) Thermodynamics of the
文摘
Oriented rutile/hematite intergrowths from Mwinilunga in Zambia were investigated by electron microscopy methods in order to resolve the complex sequence of topotaxial reactions. The specimens are composed of up to several-centimeter-large euhedral hematite crystals covered by epitaxially grown reticulated rutile networks. Following a top-down analytical approach, the samples were studied from their macroscopic crystallographic features down to subnanometer-scale analysis of phase compositions and occurring interfaces. Already, a simple morphological analysis indicates that rutile and hematite are met near the \(\left\langle {0 10} \right\rangle_{R} \left\{ { 10 1} \right\}_{R} ||\left\langle {00 1} \right\rangle_{H} \left\{ { 1 10} \right\}_{H}\) orientation relationship. However, a more detailed structural analysis of rutile/hematite interfaces using electron diffraction and high-resolution transmission electron microscopy (HRTEM) has shown that the actual relationship between the rutile and hosting hematite is in fact \(\left\langle {0 10} \right\rangle_{R} \left\{ { 40 1} \right\}_{R} ||\left\langle {00 1} \right\rangle_{H} \left\{ { 1 70} \right\}_{H}\) . The intergrowth is dictated by the formation of \(\left\{ { 1 70} \right\}_{H} |\left\{ { 40 1} \right\}_{R}\) equilibrium interfaces leading to 12 possible directions of rutile exsolution within a hematite matrix and 144 different incidences between the intergrown rutile crystals. Analyzing the potential rutile–rutile interfaces, these could be classified into four classes: (1) non-crystallographic contacts at 60° and 120°, (2) {101} twins with incidence angles of 114.44° and their complementaries at 65.56°, (3) {301} twins at 54.44° with complementaries at 125.56° and (4) low-angle tilt boundaries at 174.44° and 5.56°. Except for non-crystallographic contacts, all other rutile–rutile interfaces were confirmed in Mwinilunga samples. Using a HRTEM and high-angle annular dark-field scanning TEM methods combined with energy-dispersive X-ray spectroscopy, we identified remnants of ilmenite lamellae in the vicinity of rutile exsolutions, which were an important indication of the high-T formation of the primary ferrian–ilmenite crystals. Another type of exsolution process was observed in rutile crystals, where hematite precipitates topotaxially exsolved from Fe-rich parts of rutile through intermediate Guinier–Preston zones, characterized by tripling the {101} rutile reflections. Unlike rutile exsolutions in hematite, hematite exsolutions in rutile form \(\left\{ { 30 1} \right\}_{R} |\left\{ {0 30} \right\}_{H}\) equilibrium interfaces. The overall composition of our samples indicates that the ratio between ilmenite and hematite in parent ferrian–ilmenite crystals was close to Ilm67Hem33, typical for Fe–Ti-rich differentiates of mafic magma. The presence of ilmenite lamellae indicates that the primary solid solution passed the miscibility gap at ~900?°C. Subsequent exsolution processes were triggered by surface oxidation of ferrous iron and remobilization of cations within the common oxygen sublattice. Based on nanostructural analysis of the samples, we identified three successive exsolution processes: (1) exsolution of ilmenite lamellae from the primary ferrian–ilmenite crystals, (2) exsolution of rutile lamellae from ilmenite and (3) exsolution of hematite precipitates from Fe-rich rutile lamellae. All observed topotaxial reactions appear to be a combined function of temperature and oxygen fugacity, fO2.

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