The Fe-Mg-saponite solid solution series - a hydrothermal synthesis study

被引:65
作者
Baldermann, A. [1 ]
Dohrmann, R. [2 ]
Kaufhold, S. [2 ]
Nickel, C. [1 ]
Letofsky-Papst, I. [3 ]
Dietzel, M. [1 ]
机构
[1] Graz Univ Technol, Inst Appl Geosci, A-8010 Graz, Austria
[2] Bundesanstalt Geowissenschaften & Rohstoffe, Hannover, Germany
[3] Graz Univ Technol, Inst Electron Microscopy & Nanoanal, A-8010 Graz, Austria
关键词
saponite; trioctahedral clay minerals; hydrothermal synthesis; XRD; TEM-EELS; CRYSTAL-CHEMISTRY; CLAY-MINERALS; SMECTITE; IRON; MONTMORILLONITE; NONTRONITE; SEDIMENTS; CRYSTALLOGENESIS; TEMPERATURE; TRANSITION;
D O I
10.1180/claymin.2014.049.3.04
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The boundary conditions of saponite formation are generally considered to be well known, but significant gaps in our knowledge persist in respect to the influence of solution chemistry, temperature, and reaction time on the mineralogy, structure, stability, and chemical composition of laboratory-grown ferrous saponite. in the present study, ferrous saponite and Mgsaponite were synthesized in Teflon-lined, stainless steel autoclaves at 60, 120 and 180 degrees C, alkaline pH, reducing conditions, and initial solutions with molar Si:Fe:Mg ratios of 4:0:2, 4:1:1, 4:1.5:0.5, 4:1.75:0.25, and 4:1.82:0.18. The experimental solutions were prepared by dissolution of sodium orthosilicate (Na4SiO4), iron(11)sulfate (FeSO4 center dot 6H2O) and magnesium chloride salts (MgCl2 center dot 6H(2)O with <= 0.005 mass% of K and Ca) in 50 mL ultrapure water that contained 0.05% sodium dithionite as the reducing agent. The precipitates obtained at two, five and seven days of reaction time were investigated by X-ray diffraction techniques, transmission electron microscopy analysis, infra-red spectroscopy, and thermo-analytical methods. 1. he precipitates were composed mainly of trioctahedral ferrous saponite, with small admixtures of co-precipitated brucite, opal-CT, and 2-line ferrihydrite, and nontronite as the probable alteration product of ferrous saponite. The compositions of the obtained ferrous saponites were highly variable, (Na0.44-0.59K0.00-0.55Ca0.00-0.02)(Fe0.37-2.412+Mg0.24-2.44Fe0.00-0.283+) Sigma(2.65-2.85) [(Fe0.00-0.373+Si3.63-4.00)O-10](OH)(2), but show similarities with naturally occurring trioctahedral Fe and Mg end members, except for the Al content. This suggests that a complete solid solution may exist in the Fe-Mg-saponite series. A conceptual reaction sequence for the formation of ferrous saponite is developed based on the experimental solution and solid compositions. Initially, at pH >= 10.4, brucite-type octahedral template sheets are formed, where dissolved Si-0 tetrahedra are condensed. Subsequent reorganization of the octahedra and tetrahedra via multiple dissolution-precipitation processes finally results in the formation of saponite structures, together with brucite and partly amorphous silica. The extent of Fe2+ in the octahedral template sheets via isomorphic substitution is suggested to stabilize the saponite structure, explaining (i) the abundance of saponite enriched in Fe-VI(2+) at elevated Fe supply and (ii) the effect of structural Fe on controlling the net formation rates of ferrous saponite.
引用
收藏
页码:391 / 415
页数:25
相关论文
共 62 条
[1]   The geology and origin of sepiolite, palygorskite and saponite in Neogene lacustrine sediments of the Serinhisar-Acipayam Basin, Denizli, SW Turkey [J].
Akbulut, A ;
Kadir, S .
CLAYS AND CLAY MINERALS, 2003, 51 (03) :279-292
[2]  
[Anonymous], 1979, CHEM SILICA SOLUBILI
[3]  
[Anonymous], CLAYS CLAY MINERAL, DOI 10.1346/CCMN.1980.0280114
[4]   OCCURRENCE OF A FERROUS, TRIOCTAHEDRAL SMECTITE IN RECENT SEDIMENTS OF ATLANTIS-II DEEP, RED-SEA [J].
BADAUT, D ;
BESSON, G ;
DECARREAU, A ;
RAUTUREAU, R .
CLAY MINERALS, 1985, 20 (03) :389-404
[5]   THE RATE AND MECHANISM OF DEEP-SEA GLAUCONITE FORMATION AT THE IVORY COAST-GHANA MARGINAL RIDGE [J].
Baldermann, Andre ;
Warr, Laurence N. ;
Grathoff, Georg H. ;
Dietzel, Martin .
CLAYS AND CLAY MINERALS, 2013, 61 (3-4) :258-276
[6]  
BREUKELAAR J, 1989, Patent No. 317006
[7]  
BREUKELAAR J, 1990, Patent No. 398429
[8]   RELATIONSHIPS BETWEEN COMPOSITION AND STRUCTURE IN FE-RICH SMECTITES [J].
BRIGATTI, MF .
CLAY MINERALS, 1983, 18 (02) :177-186
[9]   Iron-rich saponite: dissolution reactions and Cr uptake [J].
Brigatti, MF ;
Lugli, C ;
Poppi, L ;
Venturelli, G .
CLAY MINERALS, 1999, 34 (04) :637-645
[10]  
CAILLERE S, 1953, CR HEBD ACAD SCI, V237, P1724