Vibrational analysis of palygorskite and sepiolite

被引:142
作者
McKeown, DA
Post, JE
Etz, ES
机构
[1] Catholic Univ Amer, Vitreous State Lab, Washington, DC 20064 USA
[2] Smithsonian Inst, Dept Mineral Sci, Washington, DC 20560 USA
[3] NIST, Surface & Microanalysis Sci Div, Gaithersburg, MD 20899 USA
关键词
FTIR; palygorskite; Raman; sepiolite;
D O I
10.1346/000986002320679549
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
Lattice dynamic calculations for the sepiolite and palygorskite structures using polarized Raman and FTIR spectra provide a fundamental basis for interpreting spectral features by assigning vibrational modes. The Si-O stretch and O-Si-O bond bending force constants determined for palygorskite are similar to equivalent values calculated previously for other phyllosilicates. The Mg-O bond stretch values, on the other hand, are about half of those determined for the equivalent Al-O and Mg-O bond stretch environments in other phyllosilicates, suggesting that the bonding within the octahedral ribbons in palygorskite and sepiolite is weaker than that in the continuous octahedral sheets in micas. The weaker bonding allows more flexible octahedral environments in palygorskite and sepiolite, giving rise to higher probabilities for cation substitutions and vacancies relative to the micas. Above similar to700 cm(-1) in the IR and 750 cm(-1) in the Raman spectra, the eigenmodes are dominated by atomic displacements within the silicate sheets. Below 700 cm(-1) the eigenmodes become mixed with motions among the Mg octahedra and the silicate sheets; the eigenmodes assigned to the most prominent peaks in the Raman spectra (near 700 cm(-1)) belong to this group. As mode frequencies decrease, the corresponding eigenmodes evolve from more localized Mg-O stretch, O-Mg-O bend and O-Si-O bend motions to longer-range motions such as silicate sheet deformations caused by silicate tetrahedra rotation and silicate sheet shearing around the Mg-octahedral sheets.
引用
收藏
页码:667 / 680
页数:14
相关论文
共 30 条
[21]   Raman spectra and vibrational analysis of the trioctahedral mica phlogopite [J].
McKeown, DA ;
Bell, MI ;
Etz, ES .
AMERICAN MINERALOGIST, 1999, 84 (5-6) :970-976
[22]   INFRARED STUDY OF ATTAPULGITE AND HCL TREATED ATTAPULGITE [J].
MENDELOV.E .
CLAYS AND CLAY MINERALS, 1973, 21 (02) :115-119
[23]   ORGANIC DERIVATIVES OF ATTAPULGITE .1. INFRARED SPECTROSCOPY AND X-RAY-DIFFRACTION STUDIES [J].
MENDELOVICI, E ;
PORTILLO, DC .
CLAYS AND CLAY MINERALS, 1976, 24 (04) :177-182
[24]   Structural and textural modifications of palygorskite and sepiolite under acid treatment [J].
Myriam, M ;
Suarez, M ;
Martin-Pozas, JM .
CLAYS AND CLAY MINERALS, 1998, 46 (03) :225-231
[25]  
Preisinger A., 1961, CLAYS CLAY MINERALS, V10, P365, DOI [DOI 10.1346/CCMN.1961.0100132, 10.1346/ccmn.1961.0100132]
[26]   Molecular access to intracrystalline tunnels of sepiolite [J].
Ruiz-Hitzky, E .
JOURNAL OF MATERIALS CHEMISTRY, 2001, 11 (01) :86-91
[27]  
SERNA C, 1977, AM MINERAL, V62, P784
[28]  
VANSCOYOC GE, 1979, AM MINERAL, V64, P215
[29]   Comparative FT-IR study of the removal of octahedral cations and structural modifications during acid treatment of several silicates [J].
VicenteRodriguez, MA ;
Suarez, M ;
BanaresMunoz, MA ;
LopezGonzalez, JD .
SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 1996, 52 (13) :1685-1694
[30]   The sepiolite membrane for ultrafiltration [J].
Wang, QK ;
Matsuura, T ;
Feng, CY ;
Weir, MR ;
Detellier, C ;
Rutadinka, E ;
Van Mao, RL .
JOURNAL OF MEMBRANE SCIENCE, 2001, 184 (02) :153-163