Accounting for natural organic matter in aqueous chemical equilibrium models:: a review of the theories and applications

被引:100
作者
Dudal, Y
Gérard, F
机构
[1] INRA, Unite Climat Sol & Environm, F-84914 Avignon 9, France
[2] INRA, Unite Biogeochim Ecosyst Forestiers, F-54280 Champenoux, France
关键词
modelling; metal complexing; organic acids; humic acids; soils; aqueous solutions;
D O I
10.1016/j.earscirev.2004.01.002
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Soil organic matter consists of a highly complex and diversified blend of organic molecules, ranging from low molecular weight organic acids (LMWOAs), sugars, amines, alcohols, etc., to high apparent molecular weight fulvic and humic acids. The presence of a wide range of functional groups on these molecules makes them very reactive and influential in soil chemistry, in regards to acid-base chemistry, metal complexation, precipitation and dissolution of minerals and microbial reactions. Out of these functional groups, the carboxylic and phenolic ones are the most abundant and most influential in regards to metal complexation. Therefore, chemical equilibrium models have progressively dealt with organic matter in their calculations. This paper presents a review of six chemical equilibrium models, namely NICA-Donnan, EQ3/6, GEOCHEM, MINTEQA2, PHREEQC and WHAM, in light of the account they make of natural organic matter (NOM) with the objective of helping potential users in choosing a modelling approach. The account has taken various faces, mainly by adding specific molecules within the existing model databases (EQ3/6, GEOCHEM, and PHREEQC) or by using either a discrete (WHAM) or a continuous (NICA-Donnan and MINTEQA2) distribution of the deprotonated carboxylic and phenolic groups. The different ways in which soil organic matter has been integrated into these models are discussed in regards to the model-experiment comparisons that were found in the literature, concerning applications to either laboratory or natural systems. Much of the attention has been focused on the two most advanced models, WHAM and NiCA-Donnan, which are able to reasonably describe most of the experimental results. Nevertheless, a better knowledge of the humic substances metal-binding properties is needed to better constrain model inputs with site-specific parameter values. This represents the main axis of research that needs to be carried out to improve the models. In addition to humic substances, more non-humic compounds should also be introduced in model databases, notably the ones that readily interact with the soil microorganisms. Thermodynamic data are generally available for most of these compounds, such as low molecular-weight Organic acids. However, the more complex non-humic substances, exhibiting a ratio of hydrophobic versus hydrophilic bonds lower than humic substances, need to be further characterised for a comprehensive implementation in chemical equilibrium models. (C) 2004 Elsevier B.V All rights reserved.
引用
收藏
页码:199 / 216
页数:18
相关论文
共 133 条
[101]  
Smith R. M., 1995, Chemical equilibrium and reaction models. Proceedings San Antonio, Texas, USA, 23 and 24 October, 1990., P7
[102]  
SPARKS DL, 1991, SSSA SPEC PUBL, V27
[103]   TRACE-METAL CHEMISTRY IN ARID-ZONE FIELD SOILS AMENDED WITH SEWAGE-SLUDGE .2. COMPARATIVE-STUDY OF THE FULVIC-ACID FRACTION [J].
SPOSITO, G ;
HOLTZCLAW, KM ;
LEVESQUE, CS ;
JOHNSTON, CT .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1982, 46 (02) :265-270
[104]  
Sposito G., 1995, Chemical equilibrium and reaction models. Proceedings San Antonio, Texas, USA, 23 and 24 October, 1990., P271
[105]   TRACE-METAL COMPLEXATION BY FULVIC-ACID EXTRACTED FROM SEWAGE-SLUDGE .1. DETERMINATION OF STABILITY-CONSTANTS AND LINEAR CORRELATION-ANALYSIS [J].
SPOSITO, G ;
HOLTZCLAW, KM ;
LEVESQUEMADORE, CS .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1981, 45 (03) :465-468
[106]   TRACE-METAL COMPLEXATION BY FULVIC-ACID EXTRACTED FROM SEWAGE-SLUDGE .2. DEVELOPMENT OF CHEMICAL-MODELS [J].
SPOSITO, G ;
BINGHAM, FT ;
YADAV, SS ;
INOUYE, CA .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1982, 46 (01) :51-56
[107]  
Sposito G., 2008, CHEM SOILS, V2nd
[108]  
Steelink C., 1985, Humic substances in soil, sediment and water: geochemistry, isolation and characterization., P457
[109]  
Stevenson F. J., 1982, Humus chemistry, genesis, composition, reactions.
[110]  
Stumm W., 2012, AQUATIC CHEM CHEM EQ