研究目的
Enhancing the adsorption and mineralization of antibiotics by constructing a hierarchical porous core-shell structure with amorphous TiO2 filled in the pores of Pt-doped mesoporous TiO2 crystals.
研究成果
Pt nanoparticles doped at the interface of the rutile-amorphous-TiO2 formed a hierarchical porous core-shell structure, enhancing the adsorption ability of the catalyst and reducing shell thickness. The Pt nanoparticle enhanced the hole migration from the bulk to the catalyst surface and promoted charge separation, increasing the photocatalytic mineralization of TCH.
研究不足
The study focuses on the photocatalytic mineralization of tetracycline hydrochloride using a specific photocatalyst structure. The applicability to other antibiotics or pollutants is not explored. The scalability and cost-effectiveness of the synthesis method for industrial applications are not discussed.
1:Experimental Design and Method Selection:
Construction of a hierarchical porous core-shell structure by filling amorphous TiO2 in the pores of Pt-doped mesoporous TiO2 crystals (MCs). Physical–chemical properties were investigated by surface photovoltage spectroscopy, X-ray photoelectron spectroscope, etc.
2:Sample Selection and Data Sources:
Adsorption and photocatalysis experiments were conducted with tetracycline hydrochloride as the model antibiotic.
3:List of Experimental Equipment and Materials:
N2 adsorption–desorption isothermal curves were detected by a BELSORP-max surface area analyzer. Micromorphologies were studied with a scanning electron microscope and high-resolution transmission electron microscope. X-ray diffraction was applied for detection.
4:Experimental Procedures and Operational Workflow:
Adsorption and photocatalysis experiments were conducted in a quartz reactor placed in a water bath. The suspension was stirred in dark for 1 h to reach adsorption equilibrium. A Xenon lamp was used to simulate solar light.
5:Data Analysis Methods:
The photocatalytic reaction constant was calculated using the pseudo-first-order reaction equation. The mineralization efficiency of TCH was evaluated with the equation provided.
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X-ray photoelectron spectroscope
Thermo ESCALAB 250XI
Thermo
Investigation of the effect of Pt doping on the charge distribution in the surface region of the catalysts.
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TOC analyzer
TOC-VCPH
Shimadzu
Analysis of the TOC of the reaction solutions.
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scanning electron microscope
QUANTA250
FEI
Study of the micromorphologies of the prepared samples.
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high-resolution transmission electron microscope
Tecnai G2 F20
FEI
Study of the micromorphologies of the prepared samples.
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X-ray diffractometer
D8 Advance
Bruker
Detection of X-ray diffraction.
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BELSORP-max surface area analyzer
MicrotracBEL
Detection of the N2 adsorption–desorption isothermal curves of the prepared samples.
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UV–vis spectrophotometer
UV-1800SPC
MACY
Analysis of the TCH concentration by measuring the absorbance of the solution at 277 nm.
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