Nicosulfuron sorption kinetics and sorption/desorption on volcanic ash-derived soils: poposal of sorption and transport mechanisms
Artículo
Open/ Download
Access note
Acceso Abierto
Publication date
2020Metadata
Show full item record
Cómo citar
Cáceres Jensen, Lizethly
Cómo citar
Nicosulfuron sorption kinetics and sorption/desorption on volcanic ash-derived soils: poposal of sorption and transport mechanisms
Author
Abstract
Nicosulfuron sorption/desorption kinetics were studied through batch sorption studies in ten volcanic ash-derived Andisol and Ultisol soils with acidic pH and variable surface charge. Two different kinetic models were used to fit the experimental data: i) Models to establish kinetic parameters (Pseudo-First and Pseudo-SecondOrder), and ii) Models to describe solute transport mechanisms of organic compounds on sorbents (Intrapartide Diffusion, Dimensionless Intraparticle, Boyd, and Two-Site Nonequilibrium). Sorption kinetic data best fit the pseudo-second-order model. Application of these models to describe solute transport suggests that underlying mechanisms are complex in all soils due to: i) surface sorption, with mass transfers controlling sorption kinetics across the boundary layer; and ii) pore diffusion (i.e. intraparticle diffusion into macropores and micropores). The Freundlich model explained equilibrium sorption data in all cases (R-2 > 0.9979) with K-f values higher than those reported for different class of soils (6.85-16.08 mu g(1-1/n )mL(1/n) g(-1)). The hysteresis was significant in all studied soils. The lower sorption rate on Ultisols must be considered in regards to Nicosulfuron leaching potential.
Patrocinador
DIUMCE project, Chile 06-2019-APIX
Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT) CONICYT FONDECYT 11110421 11100308
Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT) FCHA/DOCTORADO NACIONAL/2017-21170499
Basal Funding for Scientific and Technological Centers of Excellence FB0807
Indexation
Artículo de publicación ISI Artículo de publicación SCOPUS
Quote Item
Journal of Hazardous Materials 385 (2020) 121576
Collections
The following license files are associated with this item: