Literature DB >> 34896417

Fabrication of biochar-based hybrid Ag nanocomposite from algal biomass waste for toxic dye-laden wastewater treatment.

Wasim Akram Shaikh1, Sukalyan Chakraborty2, Rafique Ul Islam3, Ayman A Ghfar4, M Naushad4, Jochen Bundschuh5, Jyoti Prakash Maity6, Naba Kumar Mondal7.   

Abstract

Dual functional innovative approaches were developed to tackle the algal scum problem in water by utilizing the algal (Spirogyra sp.) biomass waste for organic dye-laden industrial wastewater treatment, a global problem, and challenge. Therefore, an algal biochar-based nanocomposite (nAgBC) was synthesized and employed as a low-cost adsorbent for Congo red (CR) removal. Surface morphology, physicochemical characteristics, elemental composition, phase, and stability of the nanocomposite was analyzed using BET, FESEM-EDX, FTIR, XRD, XPS, and TGA. The nanocomposite was found to be thermostable, mesoporous with large and heterogeneous surface area, containing nAg as doped material, where -OH, NH, CO, CC, SO, and CH are the surface binding active functional groups. Maximum adsorption efficiency of 95.92% (18 mg L-1 CR) was achieved (qe = 34.53 mg g-1) with 0.5 g L-1 of nanocomposite after 60 min, at room temperature (300 K) at pH 6. Isotherm and kinetic model suggested multilayer chemisorption, where adsorption thermodynamics indicated spontaneous reaction. Fluorescens spectral analysis of CR confirmed the formation of CR supramolecule, supporting enhanced adsorption. Furthermore, the result suggested a 5th cycle reusability and considerable efficacy towards real textile industrial effluents. Synergistic effects of the active surface functional groups of the biochar and nAg, along with the overall surface charge of the composite lead to chemisorption, electrostatic attraction, H-bonding, and surface complexation with CR molecules. Thus, synthesized nAgBC can be applicable to mitigate the wastewater for cleaner production and environment.
Copyright © 2021. Published by Elsevier Ltd.

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Keywords:  Adsorption mechanism; Algal biochar; Biochar-based nanocomposite; Congo red

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Year:  2021        PMID: 34896417     DOI: 10.1016/j.chemosphere.2021.133243

Source DB:  PubMed          Journal:  Chemosphere        ISSN: 0045-6535            Impact factor:   7.086


  1 in total

1.  Tailoring a novel hierarchical cheese-like porous biochar from algae residue to boost sulfathiazole removal.

Authors:  Ke Wang; Yue Wang; Shiyu Zhang; Yi-di Chen; Rupeng Wang; Shih-Hsin Ho
Journal:  Environ Sci Ecotechnol       Date:  2022-03-06
  1 in total

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