<p>Wastewater treatment is one of the most challenging problems nowadays due to the presence of different solid pollutants like dyes, salts, and organic compounds. Graphene oxide (GO)-based membrane technology is a potential method to treat wastewater. Herein, we developed a novel cGO/MSG composite membrane by functionalizing GO nanosheets with monosodium glutamate (MSG) as a cross-linker with tailored interlayer spacing. Subsequently, the cGO/MSG membranes with varying thicknesses were utilized to achieve efficient separation of diverse salts and dyes. The as-synthesized cGO/MSG membrane showed high pure water permeance of 213 ± 5 L m<sup>−2</sup>&#xa0;h<sup>−1</sup>&#xa0;bar<sup>−1</sup>. Such a membrane also showed excellent separation efficiency for dyes with high water permeance, i.e., methylene blue (100 ± 1% and water permeance of 90 ± 5 L m<sup>−2</sup>&#xa0;h<sup>−1</sup>&#xa0;bar<sup>−1</sup>) and even blue (99 ± 1% and permeance 130 ± 5 L m<sup>−2</sup>&#xa0;h<sup>−1</sup>&#xa0;bar<sup>−1</sup>). Moreover, the membranes exhibited excellent salt rejection properties, with rejection rates greater than 97% achieved for Pb(NO<sub>3</sub>)<sub>2</sub> and Ni(NO<sub>3</sub>)<sub>2</sub>. Additionally, these membranes were also stable even in harsh conditions for a long time. We believe that this approach will help to develop different membranes in the future for desalination purposes.</p>

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Highly efficient graphene oxide-based functionalized membranes for water desalination and dye separation

  • Izza Atta,
  • Muhammad Misbah ur Rehman,
  • Khalid Hussain Thebo,
  • Mohsin Kazi

摘要

Wastewater treatment is one of the most challenging problems nowadays due to the presence of different solid pollutants like dyes, salts, and organic compounds. Graphene oxide (GO)-based membrane technology is a potential method to treat wastewater. Herein, we developed a novel cGO/MSG composite membrane by functionalizing GO nanosheets with monosodium glutamate (MSG) as a cross-linker with tailored interlayer spacing. Subsequently, the cGO/MSG membranes with varying thicknesses were utilized to achieve efficient separation of diverse salts and dyes. The as-synthesized cGO/MSG membrane showed high pure water permeance of 213 ± 5 L m−2 h−1 bar−1. Such a membrane also showed excellent separation efficiency for dyes with high water permeance, i.e., methylene blue (100 ± 1% and water permeance of 90 ± 5 L m−2 h−1 bar−1) and even blue (99 ± 1% and permeance 130 ± 5 L m−2 h−1 bar−1). Moreover, the membranes exhibited excellent salt rejection properties, with rejection rates greater than 97% achieved for Pb(NO3)2 and Ni(NO3)2. Additionally, these membranes were also stable even in harsh conditions for a long time. We believe that this approach will help to develop different membranes in the future for desalination purposes.