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Herein, we synthesized in-situ Zr-doped FeO NRs photocatalyst by successive simple hydrothermal and air quenching methods. The synergistic roles of CoO (1 wt%) and Zr-doping on bacteria inactivation and model organic pollutants over FeO NRs photocatalyst were studied in detail. Initially, rod-like Zr ((0-8) %)-doped FeO NRs were produced via a hydrothermal method. CoO was loaded onto the Zr ((0-8) %)-doped FeO NRs) surface by a wet impregnation approach. The Zr-doping conditions and CoO loadings were judiciously optimized, and a highly photoactive CoO(1 wt%)/Zr(6%)-doped FeO NRs photocatalyst was developed. The CoO(1 wt%) loaded Zr(6%)-doped FeO NRs photocatalyst revealed 99.4% inactivation efficiency compared with (0, 4 and 8)% Zr-doped FeO NRs, respectively. After CoO(1 wt%)/Zr(6%)-doped FeO NRs photocatalyst treatment, Bio-TEM images of bacterial cells showed extensive morphological deviations in cell membranes, compared with the non-treated ones. Additionally, the optimum CoO(1 wt%)/Zr(6%)-doped FeO NRs photocatalyst exhibited 99.2% BPA and 98.3% orange II dye degradation after light radiation for 3 h. This work will provide a rapid method for the development of photostable catalyst materials for bacterial disinfection and organic degradation.
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http://dx.doi.org/10.1016/j.chemosphere.2022.136825 | DOI Listing |
ACS Omega
February 2023
College of Petroleum and Engineering, Hadhramout University, Mukalla, Hadhramout 50512, Yemen.
In this study, various concentrations of strontium (Sr) into a fixed amount of starch (St) and FeO nanostructures (NSs) were synthesized with the co-precipitation approach to evaluate the antibacterial and photocatalytic properties of the concerned NSs. The study aimed to synthesize nanorods of FeO with co-precipitation to enhance the bactericidal behavior with dopant-dependent FeO. Advanced techniques were utilized to investigate the structural characteristics, morphological properties, optical absorption and emission, and elemental composition properties of synthesized samples.
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February 2020
College of Physics Science and Technology & Institute of Optoelectronic Technology, Yangzhou University, Yangzhou 225002, P. R. China.
As one of the most promising photoanode materials for photoelectrochemical (PEC) water oxidation, earth-abundant hematite has been severely restricted by its poor electrical conductivity, poor charge separation, and sluggish oxygen evolution reaction kinetics. FeO has an ability to produce hydrogen, while its preparation needs high temperature to reduce Fe to Fe by using H or CO gases. Here, FeO- and FeO-based nanorods (NRs) on fluorine-doped tin oxide (FTO) substrate have been prepared, where the latter was obtained by doping Sn ions in FeOOH to reduce Fe ions to Fe.
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