4.7 Article

Biochar supported nano core-shell (TiO2/CoFe2O4) for wastewater treatment

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ENVIRONMENTAL RESEARCH
卷 238, 期 -, 页码 -

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ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.envres.2023.117169

关键词

Cinnamon biochar; Core-shells; Wastewater treatment; Chlorophenol; Synergistic effects

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This study focuses on the application of cinnamon biochar as an active anti-oxidant agent in the titania-cobalt ferrite nanocore-shell structure for wastewater treatment. The results show that the Biochar/TiO2/CoFe2O4 composite exhibits high degradation efficiency against chlorophenol pollutants under visible light, due to its porous structure and charge separation capability. The recyclability and stability of the composite make it a promising candidate for biofuel generation and energy storage devices.
The porous structure of biochar, its large surface area, and its anti-oxidant properties are extensively used for pollutant removal strategies. The literature to date has reported that the biochar assisted metal-oxide core-shells have a dominating degradation ability under solar irradiation. Therefore, this study is significantly focused on cinnamon biochar as an active anti-oxidant agent incorporated in titania-cobalt ferrite nanocore-shell (Biochar/ TiO2/CoFe2O4) structures for the first time in wastewater treatment against chlorophenol pollutants. Pure materials, core-shells, and biochar aided composites were synthesized by chemical methods, and their characteristics were analyzed using various instrumentation techniques. The diffraction outcomes of Biochar/TiO2/ CoFe2O4 showed the mixed phases containing biochar, TiO2, and CoFe2O4. The morphological characteristics revealed that the biochar creates porosity and a peripheral layer covering the core-shell. Meanwhile, absorption studies of TiO2/CoFe2O4 core-shell and Biochar/TiO2/CoFe2O4 samples achieved 65% and 92% degradation efficiencies when exposed to visible light against chlorophenol pollutants, respectively. All these results confirm the presence of distinct functional groups as well as the combined synergistic effects that activated the charge separation, resulting in the successful destruction of water pollutants. In addition, the highly efficient Biochar/ TiO2/CoFe2O4 sample was recycled, and the efficiency was maintained stable for five repeated degradation processes. Thus, Biochar/TiO2/CoFe2O4 will be utilized to expand the possibilities for biofuel generation and energy storage devices.

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