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Clay-Polymer Nanocomposites: Preparations and Utilization for Pollutants Removal

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Publisher MDPI
Date 2021 Apr 3
PMID 33799810
Citations 16
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Abstract

Nowadays, people over the world face severe water scarcity despite the presence of several water sources. Adsorption is considered as the most efficient technique for the treatment of water containing biological, organic, and inorganic contaminants. For this purpose, materials from various origins (clay minerals, modified clays, zeolites, activated carbon, polymeric resins, etc.) have been considered as adsorbent for contaminants. Despite their cheapness and valuable properties, the use of clay minerals as adsorbent for wastewater treatment is limited due to many factors (low surface area, regeneration, and recovery limit, etc.). However, clay mineral can be used to enhance the performance of polymeric materials. The combination of clay minerals and polymers produces clay-polymers nanocomposites (CPNs) with advanced properties useful for pollutants removal. CPNs received a lot of attention for their efficient removal rate of various organic and inorganic contaminants via flocculation and adsorption ability. Three main classes of CPNs were developed (exfoliated nanocomposites (NCs), intercalated nanocomposites, and phase-separated microcomposites). The improved materials can be explored as novel and cost-effective adsorbents for the removal of organic and inorganic pollutants from water/wastewater. The literature reported the ability of CPNs to remove various pollutants such as bacteria, metals, phenol, tannic acid, pesticides, dyes, etc. CPNs showed higher adsorption capacity and efficient water treatment compared to the individual components. Moreover, CPNs offered better regeneration than clay materials. The present paper summarizes the different types of clay-polymers nanocomposites and their effective removal of different contaminants from water. Based on various criteria, CPNs future as promising adsorbent for water treatment is discussed.

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References
1.
Khan M, Momina , Siddiqui M, Otero M, Alshareef S, Rafatullah M . Removal of Rhodamine B from Water Using a Solvent Impregnated Polymeric Dowex 5WX8 Resin: Statistical Optimization and Batch Adsorption Studies. Polymers (Basel). 2020; 12(2). PMC: 7077689. DOI: 10.3390/polym12020500. View

2.
Liu Q, Yang B, Zhang L, Huang R . Adsorption of an anionic azo dye by cross-linked chitosan/bentonite composite. Int J Biol Macromol. 2014; 72:1129-35. DOI: 10.1016/j.ijbiomac.2014.10.008. View

3.
Kang J, Lee C, Park J, Kim S, Choi N, Park S . Adhesion of bacteria to pyrophyllite clay in aqueous solution. Environ Technol. 2013; 34(5-8):703-10. DOI: 10.1080/09593330.2012.715677. View

4.
De S, Ali S, Ali A, Gaikar V . Micro-solvation of the Zn2+ ion-a case study. Phys Chem Chem Phys. 2009; 11(37):8285-94. DOI: 10.1039/b902422k. View

5.
Rusmin R, Sarkar B, Tsuzuki T, Kawashima N, Naidu R . Removal of lead from aqueous solution using superparamagnetic palygorskite nanocomposite: Material characterization and regeneration studies. Chemosphere. 2017; 186:1006-1015. DOI: 10.1016/j.chemosphere.2017.08.036. View