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Adsorption of Bichromate and Arsenate Anions by a Sorbent Based on Bentonite Clay Modified with Polyhydroxocations of Iron and Aluminum by the “Co-Precipitation” Method

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dc.contributor.author Kussainova, Bakytgul
dc.contributor.author Tazhkenova, Gaukhar
dc.contributor.author Kazarinov, Ivan
dc.contributor.author Burashnikova, Marina
dc.contributor.author Nurlybayeva, Aisha
dc.contributor.author Seitbekova, Gulnaziya
dc.contributor.author Kantarbayeva, Saule
dc.contributor.author Murzakasymova, Nazgul
dc.contributor.author Baibazarova, Elvira
dc.contributor.author Altynbekova, Dinara
dc.contributor.author Shinibekova, Assem
dc.contributor.author Bazarkhankyzy, Aidana
dc.date.accessioned 2026-02-20T05:39:09Z
dc.date.available 2026-02-20T05:39:09Z
dc.date.issued 2024
dc.identifier.citation Kussainova, B.; Tazhkenova, G.; Kazarinov, I.; Burashnikova, M.; Nurlybayeva, A.; Seitbekova, G.; Kantarbayeva, S.; Murzakasymova, N.; Baibazarova, E.; Altynbekova, D.; et al. Adsorption of Bichromate and Arsenate Anions by a Sorbent Based on Bentonite Clay Modified with Polyhydroxocations of Iron and Aluminum by the “Co-Precipitation” Method. Molecules 2024, 29, 3709. https://doi.org/10.3390/ molecules29153709 ru
dc.identifier.issn 1420-3049
dc.identifier.other doi.org/10.3390/ molecules29153709
dc.identifier.uri http://repository.enu.kz/handle/enu/29250
dc.description.abstract The physicochemical properties of natural bentonite and its sorbents were studied. It has been established the modification of natural bentonites using polyhydroxoxides of iron (III) (mod.1_Fe_5-c) and aluminum (III) (mod.1_Al_5-c) by the “co-precipitation” method led to changes in their chemical composition, structure, and sorption properties. It was shown that modified sorbents based on natural bentonite are finely porous (nanostructured) objects with a predominance of pores of 1.5–8.0 nm in size. The modification of bentonite with iron (III) and aluminum compounds by the “co-precipitation” method also leads to an increase in the sorption capacity of the obtained sorbents with respect to bichromate and arsenate anions. A kinetic analysis showed that, at the initial stage, the sorption process was controlled by an external diffusion factor, that is, the diffusion of the sorbent from the solution to the liquid film on the surface of the sorbent. The sorption process then began to proceed in a mixed diffusion mode when it limited both the external diffusion factor and the intra-diffusion factor (diffusion of the sorbent to the active centers through the system of pores and capillaries). To clarify the contribution of the chemical stage to the rate of adsorption of bichromate and arsenate anions by the sorbents under study, kinetic curves were processed using equations of chemical kinetics (pseudo-first-order, pseudo-second-order, and Elovich models). It was found that the adsorption of the studied anions by the modified sorbents based on natural bentonite was best described by a pseudo-second-order kinetic model. The high value of the correlation coefficient for the Elovich model (R2 > 0.9) allows us to conclude that there are structural disorders in the porous system of the studied sorbents, and their surfaces can be considered heterogeneous. Considering that heterogeneous processes occur on the surface of the sorbent, it is natural that all surface properties (structure, chemical composition of the surface layer, etc.) play an important role in anion adsorption. ru
dc.language.iso en ru
dc.publisher Molecules ru
dc.relation.ispartofseries 29, 3709;
dc.subject bentonite ru
dc.subject sorbent ru
dc.subject sorption of bichromate and arsenate anions ru
dc.subject specific surface area ru
dc.subject polyhydroxocations ru
dc.subject co-precipitation ru
dc.title Adsorption of Bichromate and Arsenate Anions by a Sorbent Based on Bentonite Clay Modified with Polyhydroxocations of Iron and Aluminum by the “Co-Precipitation” Method ru
dc.type Article ru


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