Recent Development in Non-Metal-Doped Titanium Dioxide Photocatalysts for Different Dyes Degradation and the Study of Their Strategic Factors: A Review
Недавние разработки фотокатализаторов на основе диоксида титана, легированных неметаллами, для деградации различных красителей и исследование их стратегических факторов: обзор
2022-10-31
SCID: 54.1/brefpurs
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band gap reductiondoping with p-block elementsdyes degradationnon-metal-doped TiO2visible-light photocatalysis
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Abstract (AI)
Semiconductor titanium dioxide in its basic form or doped with metals and non-metals is being extensively used in wastewater treatment by photocatalysis due to its versatile nature. Other numerous characteristics including being environmentally friendly, non-pernicious, economical, multi-phase, highly hydrophilic, versatile physio-chemical features, chemical stability, suitable band gap, and corrosion-resistance, along with its low price make TiO2 the best candidate in the field of photocatalysis. Commercially, semiconductor and synthesized photocatalysts—which have been investigated for the last few decades owing to their wide band gap—and the doping of titania with p-block elements (non-metals) such as oxygen, sulfur, nitrogen, boron, carbon, phosphorus, and iodine enhances their photocatalytic efficiency under visible-light irradiation. This is because non-metals have a strong oxidizing ability. The key focus of this review is to discuss the various factors affecting the photocatalytic activity of non-metal-doped titania by decreasing its band gap. The working parameters discussed are the effect of pH, dyes concentration, photocatalyst’s size and structure, pollutants concentration and types, the surface area of photocatalysts, the effect of light intensity and irradiation time, catalyst loading, the effect of temperature, and doping impact, etc. The mechanism of the photocatalytic action of several non-metallic dopants of titanium dioxide and composites is a promising approach for the exploration of photocatalysis activity. The various selected synthesis methods for non-metallic-doped TiO2 have been reviewed in this study. Similarly, the effect of various conditions on the doping mode has been summarized in relation to several sorts of modified TiO2.
Key Findings
1
Doping TiO2 with p-block non-metals (O, S, N, B, C, P, I) enhances photocatalytic efficiency under visible-light by decreasing the band gap.
2
Mechanistic studies of multiple non-metal dopants and composites indicate promising routes to optimize photocatalytic activity for pollutant degradation.
3
Non-metal dopants improve TiO2 photocatalysis due to their strong oxidizing ability, enabling better dye degradation in wastewater treatment.
4
Photocatalytic activity of non-metal-doped TiO2 is strongly affected by operational parameters: pH, dye concentration, catalyst size/structure, pollutant type/concentration, surface area, light intensity, irradiation time, catalyst loading, and temperature.
5
The review summarizes various synthesis methods for non-metal-doped TiO2 and describes how different conditions influence doping modes and modified TiO2 properties.
Research Object
Non-metal-doped titanium dioxide (TiO2) photocatalysts
Research Subject
Factors affecting and mechanisms governing the photocatalytic degradation performance of dyes by non-metal-doped TiO2, including band-gap reduction and operational parameters (pH, dye concentration, catalyst size/structure/surface area, light intensity/irradiation time, catalyst loading, temperature, doping effects) and synthesis/doping modes
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2022-10-31
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