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Dive into the research topics where D. A. Dzombak is active.

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Featured researches published by D. A. Dzombak.


International Journal of Phytoremediation | 2006

Development of a Plant Uptake Model for Cyanide

Joseph T. Bushey; Stephen D. Ebbs; D. A. Dzombak

A model for cyanide species uptake by willow (Salix eriocephala L. var. Michaux) was developed to interpret data from hydroponic experiments quantitatively. While the potential for cyanide phytoremediation has been demonstrated, modeling will aid in determining plant processes that contribute to cyanide transport and metabolism in willow and will target specific physiological parameters for field-scale phytoremediation design and optimization. The objective of the model development was to gain insight into the relative role of different processes with respect to dissolved free and iron-complexed cyanide transport and assimilation in plants and to determine rates at which these processes occur within the willow plant under the experimental conditions. A physiologically-based model describing plant uptake, transport, and metabolism of cyanide species was developed to reflect the processes that influence the movement of cyanide into and throughout the plant. Plant compartmentalization (root, stem, and leaf) corresponded to the level of detail in the data collected via hydroponic experiments. Inclusion of more detailed intra- and intercellular processes would create a model inconsistent with the macroscale nature of the data. Mass balances around each compartment were developed via kinetic representations for the mass transfer processes and were combined to form a model describing the fate of cyanide species within plant–water systems.


International Journal of Phytoremediation | 2006

Parameter estimation of a plant uptake model for cyanide: application to hydroponic data.

Joseph T. Bushey; Mitchell J. Small; D. A. Dzombak; Stephen D. Ebbs

A plant uptake model is applied to describe free cyanide and ferrocyanide transport and fate in willow (Salix eriocephala var. Michaux) grown in hydroponics. The model is applied to experimental data to determine best-fit parameter values, their associated uncertainty, and their relative importance to field-scale phytoremediation applications. The fitted model results, using least-squares optimization of the observed log concentrations, indicate that free cyanide volatilization from leaf tissue and free cyanide cell wall adsorption were negligible. The free cyanide maximum uptake rate and assimilate (noncyanide 15N) first-order leaf loss rate were the only coefficients that significantly affected the model goodness of fit and were concurrently sensitive to data uncertainty in the parameter optimization. Saturation kinetics may be applicable for free cyanide uptake into plants, but not for ferrocyanide uptake, which may occur via preferential protein-mediated or inefficient transpiration stream uptake. Within the free cyanide system, the relative magnitudes of the saturation uptake parameters and the demonstration of an active role for plants in uptake relative to transpiration suggest the potential importance of preferential diffusion through the cell membranes as reported in the literature, rather than protein-mediated uptake. The fitted 13-parameter model matched the observed data well except for the predicted stem and leaf tissue assimilate concentrations, which were significantly underestimated, particularly in the free cyanide system. These low predicted values, combined with the slightly underestimated solution free cyanide removal, suggest that noncyanide 15N redistribution in phloem should be considered.


Archive | 2006

Human toxicology of cyanide.

J. L. Borowitz; G. E. Isom; David V. Nakles; D. A. Dzombak; Rajat S. Ghosh; G. M. Wong-Chong


Archive | 2006

Aquatic toxicity of cyanide.

R. W. Gensemer; D. K. DeForest; A. J. Stenhouse; C. J. Higgins; R. D. Cardwell; D. A. Dzombak; Rajat S. Ghosh; G. M. Wong-Chong


Archive | 2006

Biological transformation of cyanide in water and soil.

Stephen D. Ebbs; G. M. Wong-Chong; B. S. Bond; Joseph T. Bushey; Edward F. Neuhauser; D. A. Dzombak; Rajat S. Ghosh


Archive | 2006

Cyanide cycle in nature.

Rajat S. Ghosh; Stephen D. Ebbs; Joseph T. Bushey; Edward F. Neuhauser; G. M. Wong-Chong; D. A. Dzombak


Archive | 2006

Microbiological technologies for treatment of cyanide.

G. M. Wong-Chong; J. M. VanBriesen; D. A. Dzombak; Rajat S. Ghosh


Archive | 2006

Analysis of cyanide in solids and semi-solids.

D. A. Dzombak; Joseph T. Bushey; S. M. Drop; Rajat S. Ghosh; G. M. Wong-Chong


Archive | 2006

Ecological risk assessment of cyanide in water and soil.

R. P. Lanno; C. A. Menzie; D. A. Dzombak; Rajat S. Ghosh; G. M. Wong-Chong


Archive | 2006

Management of cyanide in industrial process wastewaters.

G. M. Wong-Chong; David V. Nakles; D. A. Dzombak; Rajat S. Ghosh

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Stephen D. Ebbs

Southern Illinois University Carbondale

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David V. Nakles

Carnegie Mellon University

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