Comparative removal of hazardous cationic dyes by MOF-5 and modified graphene oxide.

Sci Rep

Department of Chemical Engineering, School of Mining, Metallurgy and Chemical Engineering, University of Johannesburg, P. O. Box 17011, Doornfontein, 2028, South Africa.

Published: September 2022

AI Article Synopsis

  • Malachite green (MG) is widely used in various industries but poses health risks, making its removal crucial for ecosystem safety.
  • Research focused on two adsorbents, MOF-5 and aminated corn stover reduced graphene oxide (ACS-RGO), for their effectiveness in removing MG, with ACS-RGO proving to be far superior.
  • ACS-RGO maintained high removal rates (>94%) across varying pH levels and exhibited an exceptional adsorption capacity of 1088.27 mg/g, while MOF-5's effectiveness was more pH-dependent and less efficient overall.

Article Abstract

Among cationic dyes, malachite green (MG) is commonly used for dying purposes and also as an inhibitor in aquaculture, food, health, and chemical industries due to its cytotoxic effects. Therefore, MG removal is essential to keep the ecosystem and human health safety. Adsorption is a viable and versatile option and exploring efficient adsorbents have high priority. Herein, MOF-5 and aminated corn Stover reduced graphene oxide (ACS-RGO) of typical adsorbents of metal-organic-frameworks (MOFs) and carbon-based classes were studied for MG removal. MOF-5 and ACS-RGO had a specific surface area and total pore volume of 507.4 and 389.0 m/g, and 0.271 cm/g and 0.273 cm/g, respectively. ACS-RGO was superior for MG adsorption and the kinetic rate coefficient for ACS-RGO was ~ 7.2 times compared to MOF-5. For ACS-RGO, MG removal remained high (> 94%) in a wide range of pH. However, dye removal was pH-dependent for MOF-5 and increased from ~ 32% to ~ 67% by increasing pH from 4 to 12. Increasing dye concentration from 25 mg/L to 100 mg/L decreased adsorption by MOF-5 and ACS-RGO for ~ 30% and 7%, respectively. Dye removal was evident in a few tens of seconds after adding ACS-RGO at doses above 0.5 g/L. A significant loss of 46% in adsorption was observed by decreasing MOF-5 mass from 1 to 0.1 g/L. ACS-RGO removed MG in multilayer with an exceptional adsorption capacity of 1088.27 mg/g. In conclusion, ACS-RGO, and MOF-5 showed promising kinetic rates and adsorption capacities toward MG.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9468029PMC
http://dx.doi.org/10.1038/s41598-022-19550-5DOI Listing

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Comparative removal of hazardous cationic dyes by MOF-5 and modified graphene oxide.

Sci Rep

September 2022

Department of Chemical Engineering, School of Mining, Metallurgy and Chemical Engineering, University of Johannesburg, P. O. Box 17011, Doornfontein, 2028, South Africa.

Article Synopsis
  • Malachite green (MG) is widely used in various industries but poses health risks, making its removal crucial for ecosystem safety.
  • Research focused on two adsorbents, MOF-5 and aminated corn stover reduced graphene oxide (ACS-RGO), for their effectiveness in removing MG, with ACS-RGO proving to be far superior.
  • ACS-RGO maintained high removal rates (>94%) across varying pH levels and exhibited an exceptional adsorption capacity of 1088.27 mg/g, while MOF-5's effectiveness was more pH-dependent and less efficient overall.
View Article and Find Full Text PDF

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