Nanomorphology of montmorillonite particles:: Estimation of the clay edge sorption site density by low-pressure gas adsorption and AFM observations

被引:141
作者
Tournassat, C
Neaman, A
Villiéras, F
Bosbach, D
Charlet, L
机构
[1] Univ Grenoble 1, CNRS, LGIT, F-38041 Grenoble, France
[2] ANDRA, F-92298 Chatenay Malabry, France
[3] ENSG, CNRS, Lab Environm & Mineral, UMR 7569, F-54501 Vandoeuvre Les Nancy, France
[4] ENSG, INPL, Lab Environm & Mineral, UMR 7569, F-54501 Vandoeuvre Les Nancy, France
[5] Forschungszentrum Karlsruhe, Inst Nukl Entsorgung, D-76021 Karlsruhe, Germany
关键词
D O I
10.2138/am-2003-11-1243
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
Dry and in situ (fluid-cell) Atomic Force Microscopy (AFM) and Low-Pressure Gas Adsorption experiments were used to investigate the surfaces of pure Na-smectite particles. These two techniques permit the identification of different surfaces of the platelets (lateral, basal, and interlayer surfaces) and to quantify their surface area. Calculation of the surface area was done for AFM, by measuring directly the dimensions of the clay particles on AFM images, and for gas adsorption experiments, by applying the Derivative Isotherm Summation (DIS) procedure designed by Villieras et al. (Villieras et al. 1992, 1997a,1997b). In the present study, we find a discrepancy between measurements of the basal and interlayer surface area. This difference is due to the stacking of platelets in dry conditions compared to their dispersion in aqueous suspension. A particle is estimated to be formed of nearly 20 stacked layers in the dehydrated state used in the gas adsorption experiment, whereas it is estimated to be composed of only 1 or 2 layers in aqueous suspension, on the basis of AFM measurements. However, the two techniques give similar results for the lateral surface area of the platelets (i.e., about 8 m(2)/g) and the perimeter to area ratio value of the particles because the stacking of platelets does not alter these values. This correlation confirms the effectiveness of the interpretation of the gas adsorption experiments lowest pressure domains as the adsorption on lateral surfaces. The lateral surface area has important implications in the calculation of specific sorption site density on clay material. The relevance of the lateral surface area value (8 m(2)/g) was tested subsequently with sorption data found in the literature. Based on those results, we show that one essential parameter for the calculation of particle edge-site density is the mean perimeter to area ratio value. This parameter can be obtained by microscopic techniques but the measurement is tedious. The good correlation between the AFM results and the DIS-method results confirms that the latter procedure offers a quick and reliable alternative method for the measurement of the lateral surface area. AFM experiments can be further conducted to constrain the dispersion around the DIS value and the anisotropy of suspended particles.
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页码:1989 / 1995
页数:7
相关论文
共 47 条
[1]  
[Anonymous], 2020, SOIL FAO SOIL GROUPS
[2]  
Avena M. J, 2002, ENCY SURFACE COLLOID, P37
[3]   STUDY OF SOME PHYSICOCHEMICAL PROPERTIES OF PILLARED MONTMORILLONITES - ACID-BASE POTENTIOMETRIC TITRATIONS AND ELECTROPHORETIC MEASUREMENTS [J].
AVENA, MJ ;
CABROL, R ;
DEPAULI, CP .
CLAYS AND CLAY MINERALS, 1990, 38 (04) :356-362
[4]   A mechanistic description of Ni and Zn sorption on Na-montmorillonite .1. Titration and sorption measurements [J].
Baeyens, B ;
Bradbury, MH .
JOURNAL OF CONTAMINANT HYDROLOGY, 1997, 27 (3-4) :199-222
[5]   High resolution gas adsorption study on illites permuted with various cations: Assessment of surface energetic properties [J].
Bardot, F ;
Villieras, F ;
Michot, LJ ;
Francois, M ;
Gerard, G ;
Cases, JM .
JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 1998, 19 (6-7) :739-759
[6]   MECHANISM OF ADSORPTION AND DESORPTION OF WATER-VAPOR BY HOMOIONIC MONTMORILLONITES .2. THE LI+, NA+, K+, RB+ AND CS+-EXCHANGED FORMS [J].
BEREND, I ;
CASES, JM ;
FRANCOIS, M ;
URIOT, JP ;
MICHOT, L ;
MASION, A ;
THOMAS, F .
CLAYS AND CLAY MINERALS, 1995, 43 (03) :324-336
[7]  
BEREND I, 1991, THESIS INPL NANCY, P308
[8]   Methods for performing atomic force microscopy imaging of clay minerals in aqueous solutions [J].
Bickmore, BR ;
Hochella, MF ;
Bosbach, D ;
Charlet, L .
CLAYS AND CLAY MINERALS, 1999, 47 (05) :573-581
[9]   The dissolution of hectorite: In-situ, real-time observations using atomic force microscopy [J].
Bosbach, D ;
Charlet, L ;
Bickmore, B ;
Hochella, MF .
AMERICAN MINERALOGIST, 2000, 85 (09) :1209-1216
[10]   Towards an understanding of the sorption of U(V) and Se(IV) on sodium bentonite [J].
Boult, KA ;
Cowper, MM ;
Heath, TG ;
Sato, H ;
Shibutani, T ;
Yui, M .
JOURNAL OF CONTAMINANT HYDROLOGY, 1998, 35 (1-3) :141-150