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February 8, 2026Langmuir3 citations

Carbon Dots-Mediated Z-Scheme Heterojunction of UiO-66-NH 2 /BiOCl for Enhanced Visible-Light-Driven Degradation of Antibiotics and Dyes

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XHXinhua HeZXZijie XiaLWLinlin Wang

Key Points

  • To develop a high-efficiency photocatalyst for the degradation of antibiotics and dyes under visible light.
  • Constructed a ternary photocatalyst using carbon dots, UiO-66-NH2, and BiOCl.
  • Evaluated the photocatalytic degradation efficiency of tetracycline and rhodamine B.
  • Conducted radical trapping experiments to identify active species involved in degradation.
  • Assessed the structural stability and reusability of the CUCl catalyst.
  • Achieved 87.2% degradation of tetracycline and 98.8% degradation of rhodamine B under visible light.
  • The CUCl catalyst outperformed binary UiO-66-NH2/BiOCl system and pristine BiOCl.
  • Identified photogenerated holes and superoxide radicals as key active species responsible for degradation.
  • Demonstrated more than 85% retention of initial catalytic activity after four reuse cycles.

Abstract

The ubiquitous accumulation of antibiotics and synthetic dyes in aquatic environments has emerged as a critical threat to the ecological integrity and human health. Visible-light-driven photocatalysis represents a sustainable strategy for decontaminating such pollutants; yet, its practical efficacy is often hampered by narrow light-harvesting ranges and rapid photogenerated carrier recombination. Herein, a ternary photocatalyst, namely, CDs/UiO-66-NH2/BiOCl (CUCl), was rationally constructed by integrating carbon dots (CDs) into a UiO-66-NH2/BiOCl Z-scheme heterojunction. Serving as an efficient electron reservoir, the introduced CDs not only significantly extended the visible-light absorption range but also effectively suppressed carrier recombination. Under visible-light irradiation, the optimized CUCl catalyst achieved remarkable degradation efficiencies of 87.2% and 98.8% for tetracycline and rhodamine B, respectively, outperforming the binary UiO-66-NH2/BiOCl heterojunction and pristine BiOCl. Radical trapping experiments and photocatalytic mechanism investigations revealed that photogenerated holes (h+) and superoxide radicals (·O2-) were the dominant active species responsible for pollutant degradation. Moreover, the CUCl catalyst exhibited excellent structural stability and reusability, retaining more than 85% of its initial catalytic activity after four consecutive reuse cycles. This work provides a novel and viable strategy for fabricating high-efficiency, stable environmental photocatalysts via the synergistic integration of Z-scheme heterojunctions and carbon dot functionalization.

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Cite This Study

He et al. (2026) studied this question.

synapsesocial.com/papers/698828620fc35cd7a8847e41https://doi.org/10.1021/acs.langmuir.5c05783
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