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  5. High-Flux lamellar MoSe2 membranes for efficient dye/salt separation

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Article
English
2023

High-Flux lamellar MoSe2 membranes for efficient dye/salt separation

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0 Files

English
2023
Journal of Colloid and Interface Science
Vol 646
DOI: 10.1016/j.jcis.2023.05.087

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Cnr Rao
Cnr Rao

Jawaharlal Nehru Centre for Advanced Scientific Research

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Swaraj Servottam
Aditi Saraswat
Muthusamy Eswaramoorthy
+1 more

Abstract

Membrane-based technology is emerging as an efficient technique for wastewater treatment in recent years. Membranes made up of two-dimensional materials provide high selectivity and water flux compared to conventional polymeric membranes. Herein, we report the synthesis and use of MoSe2 membrane for dye and drug separation in wastewater, mainly from textile and pharmaceutical industries. The as-prepared MoSe2 membrane shows ∼ 100% rejection for organic dyes and ciprofloxacin drug with a water flux reaching up to ∼ 900 Lm-2h-1bar-1. Further, the MoSe2 membrane shows lower NaCl rejection of ∼ 1.9% for the dye/salt mixture. The interlayer spacing in the MoSe2 membrane allows the water molecules and ions from the salt to pass through freely but restricts the movement of large contaminants. The membrane is stable against the bovine albumin serum fouling with a flux recovery rate of 96%. It also shows good performance even in harsh environments (pH 3–10). To the best of our knowledge, the MoSe2 membranes were fabricated for the first time for wastewater treatment application. The dye/salt separation performance of the MoSe2 membrane is significantly better than several other membranes. This work highlights the promising potential for using two-dimensional materials for textile and pharmaceutical wastewater treatment.

How to cite this publication

Swaraj Servottam, Aditi Saraswat, Muthusamy Eswaramoorthy, Cnr Rao (2023). High-Flux lamellar MoSe2 membranes for efficient dye/salt separation. Journal of Colloid and Interface Science, 646, pp. 980-990, DOI: 10.1016/j.jcis.2023.05.087.

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Publication Details

Type

Article

Year

2023

Authors

4

Datasets

0

Total Files

0

Language

English

Journal

Journal of Colloid and Interface Science

DOI

10.1016/j.jcis.2023.05.087

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