Adsorption and Microscopic Analysis of Arsenate Uptake by Magnetic Fe Nanoparticles: a Detailed Study on Coexisting Anions Effects
Author:
Publisher
Springer Science and Business Media LLC
Subject
Pollution,Water Science and Technology,Ecological Modeling,Environmental Chemistry,Environmental Engineering
Link
https://link.springer.com/content/pdf/10.1007/s11270-022-05949-3.pdf
Reference54 articles.
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3. Christl, I., Brechbühl, Y., Graf, M., & Kretzschmar, R. (2012). Polymerization of silicate on hematite surfaces and its influence on arsenic sorption. Environmental Science and Technology, 46, 13235–13243.
4. De Oliveira, H., Campos, A., Gomide, G., Zhang, Y., & Ghoshal, S. (2020). Elaboration of a core@shell bimagnetic nanoadsorbent (CoFe2O4@γ-Fe2O3) for the removal of As(V) from water. Colloids and Surfaces a: Physicochemical and Engineering Aspects, 600, 125002.
5. Ge, J., Guha, B., Lippincott, L., Cach, S., Wei, J., Su, T. L., & Meng, X. (2020). Challenges of arsenic removal from municipal wastewater by coagulation with ferric chloride and alum. Science of the Total Environment, 725, 138351.
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