On the acid-base chemistry of permanently charged minerals

被引:107
|
作者
Kraepiel, AML [1 ]
Keller, K
Morel, FMM
机构
[1] Princeton Univ, Dept Chem, Frick Chem Lab, Princeton, NJ 08544 USA
[2] Princeton Univ, Dept Civil Engn & Operat Res, Princeton, NJ 08544 USA
[3] Princeton Univ, Dept Geosci, Princeton, NJ 08544 USA
关键词
D O I
10.1021/es9802899
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The acid-base properties of brides are well described by the surface complexation model, which superposes a thermodynamic description of acid-base reactions at the oxide surface with a double-layer model of the electrostatics at the solid-solution interface. So far, however, this model has not been extended to include the effects of permanent charges such as result, for example, from isomorphic substitution in clays. Contrary to oxides, solids with permanent charge often exhibit an increasing degree of protonation with decreasing ionic strength at low pH. They also show an increase in their zero proton condition (ZPC) with decreasing ionic strength. Here we examine the influence of the pH-independent charge of a solid on its acid-base properties. We consider two simple cases: model 1 in which all the acid-base groups and pH-independent charges are distributed at the surface of a nonpenetrable solid, at the interface with the solution; Model 2 in which the solid is porous (i.e., penetrable by water and electrolyte ions), and the pH-independent charges are distributed inside the bulk of the solid, while the acid-base groups are on the surface of the solid. For model 1, the Gouy-Chapman theory yields the surface potential as a function of surface charge and ionic strength; for model 2, the solution to the Poisson-Boltzmann equation applied both inside and outside the solid yields expressions for the internal and surface potentials as a function of internal charge, surface charge, and ionic strength. When these equations are used with reasonable physical and chemical parameters for models 1 and 2, the resulting acid-base calculations exhibit the same qualitative behavior as observed experimentally for clays. Models 1 and 2 ai-e then shown to describe parsimoniously published acid-base titration data for kaolinite and montmorillonite, respectively.
引用
收藏
页码:2829 / 2838
页数:10
相关论文
共 50 条
  • [21] AN ANALOGY FOR THE LEVELING EFFECT IN ACID-BASE CHEMISTRY
    KRAMER, FA
    JOURNAL OF CHEMICAL EDUCATION, 1986, 63 (03) : 275 - 275
  • [22] Quantum mechanical effects in acid-base chemistry
    Zhang, Xiaoliu
    Zhou, Shengmin
    Leonik, Fedra M.
    Wang, Lu
    Kuroda, Daniel G.
    CHEMICAL SCIENCE, 2022, 13 (23) : 6998 - 7006
  • [23] Understanding students' misconceptions of acid-base chemistry
    Mead, Teresa
    Dianovsky, Michael
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 250
  • [24] Acid-base chemistry of omeprazole in aqueous solutions
    Yang, R
    Schulman, SG
    Zavala, PJ
    ANALYTICA CHIMICA ACTA, 2003, 481 (01) : 155 - 164
  • [25] Acid-base chemistry of the blood: A general model
    Ctr. for Msrmt./Info. in Medicine, Department of Systems Science, City University, London, United Kingdom
    不详
    不详
    COMPUT. METHODS PROGRAMS BIOMED., 1-2 (107-119):
  • [26] Modeling the acid-base surface chemistry of montmorillonite
    Bourg, Ian C.
    Sposito, Garrison
    Bourg, Alain C. M.
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2007, 312 (02) : 297 - 310
  • [27] SPECTRAL SHIFTS IN THE ACID-BASE CHEMISTRY OF POLYMERS
    RIDDLE, FL
    FOWKES, FM
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1988, 195 : 95 - POLY
  • [28] An acid-base chemistry example: Conversion of nicotine
    Summerfield, JH
    JOURNAL OF CHEMICAL EDUCATION, 1999, 76 (10) : 1397 - 1398
  • [29] Ultra-cold Acid-Base Chemistry
    Feil, Sylvia
    CHEMIE IN UNSERER ZEIT, 2020, 54 (01) : 6 - 6
  • [30] The acid-base balance of the minerals retained during human pregnancy
    Coon, CM
    Coons, RR
    Schiefelbusch, AT
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1934, 104 (03) : 757 - 768