Adsorption and Degradation of Triasulfuron on Homoionic Montmorillonites

被引:0
作者
Alba Pusino
Ilaria Braschi
Carlo Gessa
机构
[1] Università di Sassari,Dipartimento di Scienze Ambientali Agrarie e Biotecnologie Agro
[2] Università di Bologna,Alimentari
来源
Clays and Clay Minerals | 2000年 / 48卷
关键词
Adsorption; Degradation; Herbicides; Infrared Spectroscopy; Montmorillonite; Triasulfuron;
D O I
暂无
中图分类号
学科分类号
摘要
The adsorption and degradation of the herbicide triasulfuron [2-(2-chloroethoxy)-N-[[(4-methoxy-6-methyl-l,3,5-triazin-2-yl)amino]carbonyl]benzenesulfonamide] (CMMT) on homoionic Fe3+-, Al3+-, Ca2+-, or Na+-exchanged montmorillonite in aqueous medium were studied. Ca- and Na-exchanged montmorillonite were ineffective in the adsorption and degradation of triasulfuron. The adsorption on Fe-and Al-exchanged montmorillonite was rapid, and equilibrium was attained after 5 min. Degradation of the herbicide was slow and the type of the degradation products depended on the nature of the exchangeable cations. In the presence of Fe3+-rich montmorillonite, the metabolites 2-(2-chloro-ethoxy)benzenesulfonamide (CBSA), 2-(2-chloroethoxy)-N-[[(4-hydroxy-6-methyl-l,3,5-triazin-2-yl)amino]carbonyl]benzenesulfonamide (CHMT), and l-[2-(2-chloroethoxy)benzene-l-sulfonyl]-7-acetyl-triuret (CBAT) were the only identified products, whereas 2-amino-4-methoxy-6-methyltriazine (AMMT), CBSA, CHMT, and CBAT were the primary metabolites for the Al3+-rich montmorillonite. A Fourier transform infrared (FT-IR) study of montmorillonite samples after the interaction with triasulfuron in organic solution suggests that the hydrolysis mechanism involves the adsorption of the herbicide on the 2:1 layers.
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页码:19 / 25
页数:6
相关论文
共 52 条
[1]  
Braschi I(1997)Kinetics and hydrolysis mechanism of triasulfuron. Journal of Agricultural and Food Chemistry 45 4495-4499
[2]  
Calamai L(1990)Mode of action, crop selectivity and soil relations of the sulfonylurea herbicide. Pesticide Science 29 263-281
[3]  
Cremonini MA(1997)Interaction of rimsulfuron with smectities. Clays and Clay Minerals 45 1-5
[4]  
Fusi P(1961)Vibrational spectra of pyridinium salts. Canadian Journal of Chemistry 39 2004-2024
[5]  
Gessa C(1960)Studies in adsorption: Part XI. A system of classification of solution adsorption isotherms, and its use in diagnosis of adsorption mechanisms and in measurement of specific surface areas of solids. Journal of the Chemical Society 111 3973-3993
[6]  
Pantani O(1986)A simple barium chloride method for determining cation exchange capacity and exchangeable cations. Soil Science Society of America Journal 50 605-608
[7]  
Pusino A(1961)Spectrophotometrically determined ionization constants of derivatives of symmetric triazine. Journal of Chemical Engineering Data 6 610-612
[8]  
Brown HM(1994)Interactions of clay minerals with organic pollutants. Science of the Total Environment 141 223-240
[9]  
Calamai L(1991)Interactions of montmorillonite with organic compounds-ad-sorptive and catalytic properties. Chemosphere 22 769-798
[10]  
Pantani O(1994)Influence of clay minerals on adsorption and degradation of a sulfonylurea herbicide (cinosulfuron) Applied Clay Science 8 373-387