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1.
Ceramics International ; 49(3):4449-4459, 2023.
Article in English | Academic Search Complete | ID: covidwho-2234049

ABSTRACT

The use of heterojunctions with different semiconductors has shown to be an important strategy to increase the efficiency of heterogeneous photocatalytic processes. In this regard, heterojunctions consisting of ZnO/g-C 3 N 4 (x-Zn/gCN) and ZnFe 2 O 4 /g-C 3 N 4 (x-ZF/gCN) were synthesized in different mass proportions of g-C 3 N 4 (x = 10, 50 and 80%) through the following simple methods combination: mixture, sonication and thermal treatment. Observations from X-ray diffractometry (XRD), Fourier-transform infrared spectra (FTIR) and field emission scanning electron microscope (FESEM) analyses confirmed that the materials were successfully formed. The g-C 3 N 4 incorporation was important in the textural and optical properties modification of the heterojunctions produced. In addition, in the photoluminescence spectroscopy (PL), it was possible to observe g-C 3 N 4 influence in the 50-Zn/gCN emission profile changing, reducing the direct recombination rate of the photogenerated charges due to a probable Z-scheme mechanism. This catalyst demonstrated greater efficiency of photocatalytic degradation when compared to the remaining materials, both for cefazolin (CFZ) and reactive black 5 (RB5), reaching 78% and 95%, respectively, after 120 min. Moreover, it also revealed good photostability after five successive cycles. 50-Zn/gCN heterojunction presents a promising character in photocatalytic reactions mediated by solar light for contaminants degradation such as pharmaceutical products and dyes and can be used as an alternative to minimize the effects of water pollution caused during the COVID-19 pandemic. [Display omitted] • ZnO/g-C 3 N 4 and ZnFe 2 O 4 /g-C 3 N 4 heterojunctions were obtained by a facile method. • Reduction in the direct recombination rate of photogenerated charges in 50-Zn/gCN. • Charge transfer in 50-Zn/gCN according to the Z-scheme mechanism. • 50-Zn/gCN photocatalytic degradation of 78% for cefazolin and 95% for RB5. • 50-Zn/gCN can reduce water pollution generated during the COVID-19 pandemic. [ FROM AUTHOR]

2.
Ceramics International ; 2022.
Article in English | ScienceDirect | ID: covidwho-2060519

ABSTRACT

The use of heterojunctions with different semiconductors has shown to be an important strategy to increase the efficiency of heterogeneous photocatalytic processes. In this regard, heterojunctions consisting of ZnO/g-C3N4 (x-Zn/gCN) and ZnFe2O4/g-C3N4 (x-ZF/gCN) were synthesized in different mass proportions of g-C3N4 (x = 10, 50 and 80%) through the following simple methods combination: mixture, sonication and thermal treatment. Observations from X-ray diffractometry (XRD), Fourier-transform infrared spectra (FTIR) and field emission scanning electron microscope (FESEM) analyses confirmed that the materials were successfully formed. The g-C3N4 incorporation was important in the textural and optical properties modification of the heterojunctions produced. In addition, in the photoluminescence spectroscopy (PL), it was possible to observe g-C3N4 influence in the 50-Zn/gCN emission profile changing, reducing the direct recombination rate of the photogenerated charges due to a probable Z-scheme mechanism. This catalyst demonstrated greater efficiency of photocatalytic degradation when compared to the remaining materials, both for cefazolin (CFZ) and reactive black 5 (RB5), reaching 78% and 95%, respectively, after 120 min. Moreover, it also revealed good photostability after five successive cycles. 50-Zn/gCN heterojunction presents a promising character in photocatalytic reactions mediated by solar light for contaminants degradation such as pharmaceutical products and dyes and can be used as an alternative to minimize the effects of water pollution caused during the COVID-19 pandemic.

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