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Updated: May 23, 2025

A Complete Method for Evaluating the Performance of Photocatalysts for the Degradation of Antibiotics in Environmental Remediation
Published on: October 6, 2022
Ultrahigh antipsychotics selective accumulation and efficient photocatalytic degradation using a novel 2D
Lin Liu1, Runan Chen1, Chenshi Luo1
1School of Environment, Henan Key Laboratory for Environmental Pollution Control, Key Laboratory for Yellow River and Huai River Water Environmental Pollution Control, Ministry of Education, Henan Normal University, Xinxiang, Henan, 453007, PR China.
Abstract:
Adsorption-assisted photocatalytic degradation of pollutants is an effective method to improve degradation efficiency. However, most adsorptive photocatalysts are not selective and cannot efficiently remove low-concentration targets in complex systems, which limit their practical application. Therefore, a novel molecularly imprinted photocatalyst (MI-BiOIO3) with high selectivity and adsorption capacity was prepared using two-dimensional BiOIO3 nanosheet as the matrix. Based on the abundant imprinting sites in the surface imprinted polymer of BiOIO3, the prepared MI-BiOIO3 exhibited ultrahigh risperidone (RIS) selective accumulation performance, with a theoretical maximum adsorption capacity calculated by the Langmuir equation reaching 272.24 mg g-1 within 5 min and an imprinting factor as high as 15.3. The adsorption property was not affected by common pH changes and the coexistence of humic acid and inorganic ions. Due to the synergistic effect of adsorption and photocatalysis, RIS after being concentrated by MI-BiOIO3 could be completely degraded within 30 min, and more than two-thirds of the degradation intermediates were nontoxic. After five cycles, the selective adsorption and degradation performance of MI-BiOIO3 toward RIS did not reduce considerably. As an adsorptive photocatalyst, the prepared MI-BiOIO3 could selectively remove 50.3%-61.5% of 1 mg L-1 of RIS in river, lake, and municipal wastewater samples. DFT simulation analysis verified that the ultrahigh selective accumulation performance was due to the van der Waals force, hydrogen bonds, electrostatic interaction, and π-π stacking interactions between MI-BiOIO3 and RIS. This study provides a new concentrate-and-destroy strategy by photocatalysts for low-concentration drug contaminants in complex media.
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