4.7 Article

Construction of ZnIn2S4/MOF-525 heterojunction system to enhance photocatalytic degradation of tetracycline

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ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
卷 30, 期 25, 页码 67647-67661

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SPRINGER HEIDELBERG
DOI: 10.1007/s11356-023-27282-w

关键词

MOF-525; ZnIn2S4; Type II heterojunction; Photocatalysis; Tetracycline degradation

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This study introduced a typical metal sulfide semiconductor ZnIn2S4 into a Zr-MOF (MOF-525) to prepare a series of ZIS/MOF-525 composite photocatalysts, which showed good photocatalytic performance and stability. The findings provide feasible insights for the preparation of novel and efficient PMOF-based photocatalysts in the future.
Zirconium-based porphyrin metal organic frameworks (Zr-PMOFs) had attracted attention in the field of photocatalysis in recent years. However, the recombination of photogenerated carriers of monomer PMOF limits its performance of photocatalytic organic pollutants degradation. Metal sulfide has a suitable visible band gap, which can form a heterojunction with MOF materials to enhance the photocatalytic efficiency of MOF. Therefore, a typical metal sulfide semiconductor ZnIn2S4 (ZIS) was introduced into a Zr-MOF (MOF-525) by solvothermal method to prepare a series of ZIS/MOF-525 (ZIS/MOF-525-1, ZIS/MOF-525-2, ZIS/MOF-525-3 and ZIS/MOF-525-4) composite photocatalysts in this work. The results of characterization analysis, optical analysis and electrochemical analysis showed that the interface of ZIS/MOF-525 formed a typical type-II heterojunction, which accelerated the electron transport rate and effectively inhibited the recombination of photogenerated e(-) and h(+) in MOF-525. The optimal removal efficiency of tetracycline (TC) by ZIS/MOF-525-3 (the mass of MOF-525 is 30 mg) reached 93.8% under 60 min visible light illumination, which was greater than that of pure MOF-525 (37.2%) and ZnIn2S4 (70.0%), and it still maintained good stability after five cycles reusing experiment. This work provides feasible insight for the preparation of novel and efficient PMOF-based photocatalysts in the future.

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