Title of article :
A Novel and an Efficient 3D High Nitrogen Doped Graphene Oxide Adsorbent for the Removal of Congo Red from Aqueous Solutions
Author/Authors :
Zeraatkar Moghaddam ، A. - University of Birjand , Ghiamati ، E. - University of Birjand , Pakar ، R. - University of Birjand , Sabouri ، M. R. - Islamic Azad University , Ganjali ، M. R. - University of Tehran, Endocrinology and Metabolism Molecular-Cellular Sciences Institute, Tehran University of Medical
Pages :
14
From page :
501
To page :
514
Abstract :
The current study both synthesizes and uses four compounds of graphene oxide (GO), nitrogen doped graphene oxide (NDGO), high nitrogen doped graphene oxide (HNDGO), and three dimensional high nitrogen doped graphene oxide (3DHNDGO) in order to remove a model anionic dye, Congo red (CR) from wastewaters. It also compares their carbon nanostructure, with regard to removal efficiency and finds out that 3DHNDG yields higher efficiency in removal of CR, especially at lower pHs. This is due to its better dispersibility and greater surface area. Also, batch adsorption technique has been utilized and all involved parameters that affect the removal efficiency, e.g. initial pH, adsorbent dosage, initial CR concentration, and contact time are examined. The study applies Central Composite Design (CCD) to figure out their efficacies, with the results showing the following optimum conditions for removal of 100 ppm of CR: 4 mg/mL of the adsorbent, pH = 3, and 25 min of contact time. Furthermore, it studies the adsorption activity of the synthesized adsorbent, including kinetics, isotherm, and desorption comprehensibly. The adsorption isotherm is wellfitted through the Langmuir model, exhibiting high CR adsorption capacity. Also, CR adsorption kinetics shows that it has obeyed a pseudosecondorder kinetic model, indicating that adsorption has made the ratelimiting step. In addition, the proposed adsorbent has successfully been applied to reduce the concentration of CR as hazardous dye materials in the water and wastewater samples.
Keywords :
Carbon nanostructures , Treatment , Optimization , Isotherm , Kinetic
Journal title :
Pollution
Serial Year :
2019
Journal title :
Pollution
Record number :
2453706
Link To Document :
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