Anastasia Gennadyevna Ilgen
University of Alaska Fairbanks
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Featured researches published by Anastasia Gennadyevna Ilgen.
Environmental Science & Technology | 2012
Anastasia Gennadyevna Ilgen; Thomas P. Trainor
We have studied the immobilization of Sb(III) and Sb(V) by Al-rich phases - hydrous Al oxide (HAO), kaolinite (KGa-1b), and oxidized and reduced nontronite (NAu-1) - using batch experiments to determine the uptake capacity and the kinetics of adsorption and Extended X-ray Absorption Fine Structure (EXAFS) Spectroscopy to characterize the molecular environment of adsorbed Sb. Both Sb(III) and Sb(V) are adsorbed in an inner-sphere mode on the surfaces of the studied substrates. The observed adsorption geometry is mostly bidentate corner-sharing, with some monodentate complexes. The kinetics of adsorption is relatively slow (on the order of days), and equilibrium adsorption isotherms are best fit using the Freundlich model. The oxidation state of the structural Fe within nontronite affects the adsorption capacity: if the clay is reduced, the adsorption capacity of Sb(III) is slightly decreased, while Sb(V) uptake is increased significantly. This may be a result of the presence of dissolved Fe(II) in the reduced nontronite suspensions or associated with the structural rearrangements in nontronite due to reduction. These research findings indicate that Sb can be effectively immobilized by Al-rich phases. The increase in Sb(V) uptake in response to reducing structural Fe in clay can be important in natural settings since Fe-rich clays commonly go through oxidation-reduction cycles in response to changing redox conditions.
Environmental Science & Technology | 2017
Anastasia Gennadyevna Ilgen; Jessica Nicole Kruichak; Kateryna Artyushkova; Matthew Newville; Chengjun J. Sun
Adsorption and redox transformations on clay mineral surfaces are prevalent in surface environments. We examined the redox reactivity of iron Fe(II)/Fe(III) associated with natural and synthetic ferric nontronites. Specifically, we assessed how Fe(II) residing in the octahedral sheets, or Fe(II) adsorbed at the edge sites alters redox activity of nontronites. To probe the redox activity we used arsenic (As) and selenium (Se). Activation of both synthetic and natural ferric nontronites was observed following the introduction of Fe(II) into predominantly-Fe(III) octahedral sheets or through the adsorption of Fe(II) onto the mineral surface. The oxidation of As(III) to As(V) was observed via catalytic (oxic conditions) and, to a lesser degree, via direct (anoxic conditions) pathways. We provide experimental evidence for electron transfer from As(III) to Fe(III) at the natural and synthetic nontronite surfaces, and illustrate that only a fraction of structural Fe(III) is accessible for redox transformations. We show that As adsorbed onto natural and synthetic nontronites forms identical adsorption complexes, namely inner-sphere binuclear bidentate. We show that the formation of an inner-sphere adsorption complex may be a necessary step for the redox transformation via catalytic or direct oxidation pathways.
Chemical Geology | 2013
Vanessa J. Ritchie; Anastasia Gennadyevna Ilgen; Seth H. Mueller; Thomas P. Trainor; Richard J. Goldfarb
Geochimica et Cosmochimica Acta | 2012
Anastasia Gennadyevna Ilgen; Andrea L. Foster; Thomas P. Trainor
Geochimica et Cosmochimica Acta | 2014
Anastasia Gennadyevna Ilgen; Frantisek Majs; Amanda J. Barker; Thomas A. Douglas; Thomas P. Trainor
Chemical Geology | 2011
Anastasia Gennadyevna Ilgen; Sergey N. Rychagov; Thomas P. Trainor
Journal of Physical Chemistry C | 2015
Randall T. Cygan; Luke L. Daemen; Anastasia Gennadyevna Ilgen; James L. Krumhansl; Tina M. Nenoff
Archive | 2016
Robert Charles Choens; Thomas A. Dewers; Anastasia Gennadyevna Ilgen; Nicolas Espinoza; Michael Aman
Archive | 2018
Robert Charles Choens; Anastasia Gennadyevna Ilgen; Carlos F. Jove-Colon; Jennifer Wilson; Moo Y. Lee
Archive | 2017
Anastasia Gennadyevna Ilgen; Michael Aman; Joshua David Feldman; Jessica Nicole Kruichak; N. Espinoza; Thomas A. Dewers; Robert Charles Choens