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Updated: Apr 25, 2026

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Published on: October 5, 2019
An engineered membrane separation system using a binder-free immobilized heterojunction photocatalyst for enhanced
Zhecun Wang1, Yangguang Yang1, Zhanpeng Xu1
1College of Materials Science and Engineering, Liaoning Technical University, Fuxin 123000, China. wangzhecun12@mails.ucas.ac.cn.
None:
MOF-based photocatalytic membranes provide a promising solution for efficient, selective, and continuous pollutant removal by effectively integrating membrane separation and photocatalytic degradation. However, a combination of factors, including single-MOF photocatalysis, high driving pressure, and binder-based immobilization, limits the photocatalytic efficiency for large-scale organic dye separation. Herein, a binder-free immobilization strategy combining in situ MOF-on-substrate growth and pressure-driven coating is proposed to construct multi-component collaborative heterojunction photocatalysts on copper foam, with high photocatalytic activity on the surface. This stable and highly exposed multi-component heterojunction photocatalyst on the copper foam surface demonstrates rapid and efficient degradation of various organic dyes. By leveraging a multi-component collaborative construction method and a kinetic model, we reveal a synergistic effect that enhances the photocatalytic reaction process, enabling rapid and efficient in situ degradation of various water-soluble dye pollutants. Based on this synergistic effect, an engineered microfiltration membrane-like system, which featuring a large specific surface area for abundant active sites, long transport channels, and excellent synergistic photocatalytic degradation properties, is developed for the pressureless, continuous, and long-term separation of large-scale organic dyes from wastewater with high efficiency, showing great potential for practical large-scale organic pollutant treatment.
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