Fabrication of surface molecularly imprinted photocatalyst POPD/Bi2O3/CeO2 with selective denitrification performance under visible light irradiation

IF 2.8 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Research on Chemical Intermediates Pub Date : 2024-12-27 DOI:10.1007/s11164-024-05483-3
Zuchao Meng, Mengfan Cui, Yingying Li, Jie Xiang, Tianwen Wang
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Abstract

Enhancing photocatalytic selectivity is essential for the effective and efficient utilization of catalysts. In this study, a molecularly imprinted polymer POPD/Bi2O3/CeO2, designated as MIP-POPD/Bi2O3/CeO2, was successfully synthesized via photopolymerization using pyridine as a template. The resulting MIP-POPD/Bi2O3/CeO2 was characterized through Fourier transform infrared spectroscopy, scanning electron microscopy, X-ray diffraction, X-ray photoelectron spectroscopy, N₂ adsorption–desorption isotherms, and UV–vis diffuse reflectance spectroscopy. MIP-POPD/Bi2O3/CeO2 exhibited enhanced charge transfer and efficient separation of photogenerated carriers, as confirmed by photoluminescence measurements, electrochemical impedance spectroscopy analysis, and photocurrent response (It) curve evaluations. When the concentration of pyridine in simulated oil reached 80 µg/g, with an amount of 1.6 g/L for MIP-POPD/Bi2O3/CeO2 and an illumination time of 120 min, the degradation rate of pyridine achieved 80%, which is 1.57 times greater than that observed using NMIP-POPD/Bi2O3/CeO2. After an adsorption for 30 min, MIP-POPD/Bi2O3/CeO2 exhibited the adsorption capacity of 5 mg/g, attributed to the large number of molecularly imprinted pores on its surface. In various mixed systems, the selectivity coefficients for pyridine using MIP-POPD/Bi2O3/CeO2 consistently exceeded 1.5, which can be attributed to the selective adsorption properties of the imprinted pores within the polymers that preferentially recognize and remove pyridine. Furthermore, after five cycles, the photocatalytic degradation rate of pyridine by MIP-POPD/Bi2O3/CeO2 can still reach 77%, indicating that MIP-POPD/Bi2O3/CeO2 possesses good stability. Trapping experiments demonstrated that superoxide radicals (·O2) and holes (h+) were the predominant active species in photocatalytic reactions. Additionally, a proposed mechanism for photocatalytic denitrification utilizing MIP-POPD/Bi2O3/CeO2 was presented. This study provides a promising strategy for designing Bi-based molecular imprinting photocatalysts aimed at efficiently removing low-concentration, highly toxic target pollutants from mixed samples.

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来源期刊
CiteScore
5.70
自引率
18.20%
发文量
229
审稿时长
2.6 months
期刊介绍: Research on Chemical Intermediates publishes current research articles and concise dynamic reviews on the properties, structures and reactivities of intermediate species in all the various domains of chemistry. The journal also contains articles in related disciplines such as spectroscopy, molecular biology and biochemistry, atmospheric and environmental sciences, catalysis, photochemistry and photophysics. In addition, special issues dedicated to specific topics in the field are regularly published.
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