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Bioinspired Porphyrin‐Based Catalysts From Temporospatial Confined Frameworks for Ultrafast Removal of Sulfaclozine

Source: PubMed Central Open Access, NCBI / U.S. National Library of Medicine

Advanced ScienceLast synced 9/1/2026Status: syncedPMID: 42669161 pmidDOI: 10.1002/advs.77224

ABSTRACT Inspired by natural photosynthetic systems, the rational design of artificial photocatalysts featuring asymmetrically coordinated dual‐centers and a tailored microenvironment offers promising opportunities to overcome the intrinsic limitations in selective chemical reactions. Here, we present an asymmetric coordination catalyst by immobilizing porphyrins within a defect‐engineered metal–organic framework. By leveraging the matched size of guest molecules in heterogeneous pores, the electron‐hole recombination obstacle was significantly overcome. Across the library of multivariate zirconia metal‐organic frameworks, the optimal member stands out for its photocatalytic properties, delivering an excellent apparent quantum yield (11.31%) for ultra‐fast degradation of sulfaclozine (SCL) with a 10‐minute reaction time. Consistent with the extended X‐ray absorption fine structure (EXAFS) and theoretical calculations, the confined groups in microporous environments remarkably increased the charge separation ability of the Zr‐O nano‐capsules in biomimetic porous PSI and PSII systems. The turnover frequency is 32.1 and 36.9 times higher than that of the pristine framework and the commercial TiOphotocatalyst, respectively. This work establishes a broadly applicable strategy for multivariate zirconia metal‐organic frameworks and provides a platform for tailoring active‐site configuration for photocatalytic reactions. We report the rational design of artificial photocatalysts with

Abstract

ABSTRACT Inspired by natural photosynthetic systems, the rational design of artificial photocatalysts featuring asymmetrically coordinated dual‐centers and a tailored microenvironment offers promising opportunities to overcome the intrinsic limitations in selective chemical reactions. Here, we present an asymmetric coordination catalyst by immobilizing porphyrins within a defect‐engineered metal–organic framework. By leveraging the matched size of guest molecules in heterogeneous pores, the electron‐hole recombination obstacle was significantly overcome. Across the library of multivariate zirconia metal‐organic frameworks, the optimal member stands out for its photocatalytic properties, delivering an excellent apparent quantum yield (11.31%) for ultra‐fast degradation of sulfaclozine (SCL) with a 10‐minute reaction time. Consistent with the extended X‐ray absorption fine structure (EXAFS) and theoretical calculations, the confined groups in microporous environments remarkably increased the charge separation ability of the Zr‐O nano‐capsules in biomimetic porous PSI and PSII systems. The turnover frequency is 32.1 and 36.9 times higher than that of the pristine framework and the commercial TiOphotocatalyst, respectively. This work establishes a broadly applicable strategy for multivariate zirconia metal‐organic frameworks and provides a platform for tailoring active‐site configuration for photocatalytic reactions. We report the rational design of artificial photocatalysts with asymmetrically coordinated dual‐metal centers and a tailored microenvironment, broadly applicable strategy is established for the synthesis of multivariate zirconium‐based metal–organic frameworks, offering a platform for precisely tuning active‐site configurations to optimize photocatalytic performance. advs77224-abs-0001 graphical

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