Preparation of novel and highly active magnetic ternary structures (metal-organic framework/cobalt ferrite/graphene oxide) for effective visible-light-driven photocatalytic and photo-Fenton-like degradation of organic contaminants

[Display omitted] •MIL/Co/(3%)GO ternary photocatalyst led to 99.93% degradation of DtR-23.•The above magnetic ternary photocatalyst also led to 99.65% degradation of ReR-198.•Optimum GO loading for preparing magnetic ternary composite determined to be 3 wt%•pH, C0,DtR-23 & catalyst loading effe...

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Veröffentlicht in:Journal of colloid and interface science 2021-11, Vol.602, p.73-94
Hauptverfasser: Bagherzadeh, Seyed Behnam, Kazemeini, Mohammad, Mahmoodi, Niyaz Mohammad
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Sprache:eng
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Zusammenfassung:[Display omitted] •MIL/Co/(3%)GO ternary photocatalyst led to 99.93% degradation of DtR-23.•The above magnetic ternary photocatalyst also led to 99.65% degradation of ReR-198.•Optimum GO loading for preparing magnetic ternary composite determined to be 3 wt%•pH, C0,DtR-23 & catalyst loading effects upon photocatalysts activity were determined.•A chemical mechanism for degradation of pollutants upon the MIL/Co/(3%)GO proposed. Herein, MIL-101(Fe), CoFe2O4, novel binary (MIL-101(Fe)/CoFe2O4, MIL-101(Fe)/GO and CoFe2O4/GO), and ternary (MIL-101(Fe)/CoFe2O4/(3%)GO and MIL-101(Fe)/CoFe2O4/(7%)GO) magnetic composites based upon the MIL-101(Fe) were synthesized. The XRD, FESEM, TEM, EDX, BET-BJH, FTIR, VSM, DRS, PL, EIS and other electrochemical analyses were applied to characterize samples. The MIL/CoFe2O4/(3%)GO demonstrated the best performance compared to other samples for visible light photocatalytic and photo-Fenton-like degradation of Direct Red 23 (DtR-23), Reactive Red 198 (ReR-198) dyes as well as Tetracycline Hydrochloride (TC-H) antibiotic. Degradation of dyes using the ternary composite after 70 min of visible light irradiation was greater than that of 99%. The presence of the optimum GO as a strong electron acceptor in MIL/CoFe2O4/(3%)GO not only led to the effective separation of charge carriers and thus reduction of their recombination but also increased the absorption of visible light. The composite possessed good durability in terms of stability and reusability. The PL, EIS and electrochemical analyses indicated that the MIL/CoFe2O4/(3%)GO improved the optical properties and photocatalytic performance.
ISSN:0021-9797
1095-7103
DOI:10.1016/j.jcis.2021.05.181