Apophyllite (001) surface alteration in aqueous solutions studied by HAFM

被引:30
作者
Aldushin, K
Jordan, G
Rammensee, W
Schmahl, WW
Becker, HW
机构
[1] Ruhr Univ Bochum, Inst Geol Mineral & Geophys, DD-44780 Bochum, Germany
[2] Univ Cologne, Inst Mineral & Geochem, D-50674 Cologne, Germany
[3] Ruhr Univ Bochum, Inst Phys Ionenstrahlen Exp Phys 3, D-44780 Bochum, Germany
关键词
D O I
10.1016/S0016-7037(03)00375-2
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
Depending on pH and temperature, two different types of surface reactions occur on the apophyllite (001) surface in aqueous HC1-solutions at temperatures from 20 to 130 degreesC. At low pH, laterally spreading hillocks cover the surface. The hillocks are softer than the pristine surface, chemical analysis shows a depletion in Ca + K, and the spreading velocity of hillocks depends on pH. This indicates a change in chemical bond strength, non-stoichiometric dissolution and a mechanism involving protons. External disturbances such as the AFM scanning tip cause the upper surface layers to peel off revealing that the active sites of hillock formation are between the silicate layers of apophyllite. The observed process can therefore be described by a penetrative ion-replacement reaction which proceeds well below the surface monolayer. By this ion-replacement, the silicate layers eventually become destabilised. The observed reaction, therefore, is equivalent to an incongruent dissolution process. Despite structural similarities, this process is only superficially similar to the ion-exchange occurring in clay minerals or zeolites. In these minerals, the structural backbone is not destabilized. At a more neutral pH and high temperatures, step retreat and etch pit formation can be observed on the apophyllite (001) surface thus. indicating a, more congruent dissolution mechanism. Copyright (C) 2004 Elsevier Ltd.
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页码:217 / 226
页数:10
相关论文
共 39 条
[1]   Molecular-scale surface processes during the growth of calcite in the presence of manganese [J].
Astilleros, JM ;
Pina, CM ;
Fernández-Díaz, L ;
Putnis, A .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2002, 66 (18) :3177-3189
[2]  
Bickmore BR, 2001, AM MINERAL, V86, P411
[3]   Mineral precipitation and dissolution in aqueous solution: in-situ microscopic observations on barite (001) with atomic force microscopy [J].
Bosbach, D ;
Hall, C ;
Putnis, A .
CHEMICAL GEOLOGY, 1998, 151 (1-4) :143-160
[4]   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
[5]  
CAVE LC, 2002, THESIS U CAPE TOWN
[6]   Interaction of natrolite and thomsonite intergrowths with aqueous solutions of different initial pH values at 25 degrees C in the presence of KCl: Reaction mechanisms [J].
Charistos, D ;
Godelitsas, A ;
Tsipis, C ;
Sofoniou, M ;
Dwyer, J ;
Manos, G ;
Filippidis, A ;
Triantafyllidis, C .
APPLIED GEOCHEMISTRY, 1997, 12 (05) :693-703
[7]  
COLVILLE AA, 1971, AM MINERAL, V56, P1222
[8]  
DUNN PJ, 1978, AM MINERAL, V63, P196
[9]  
FRONDEL C, 1979, AM MINERAL, V64, P799
[10]   Scanning force microscopy of gypsum dissolution and crystal growth [J].
Hall, C ;
Cullen, DC .
AICHE JOURNAL, 1996, 42 (01) :232-238