Issue 46, 2025

A bifunctional nanozyme with dual oxidase- and catalase-mimicking activities for catalytic oxidation cycling of its target substrate

Abstract

We report the new concept of a bifunctional nanozyme that participates in oxidase- and catalase-mimicking activities, where the catalytic product H2O2, via its oxidase-mimicking O2-consuming activity, can be converted to O2 again via its own catalase-mimicking activity, thus allowing catalytic oxidation cycling of its target substrate. The bifunctional nanozyme was synthesized by pyrolyzing iron-doped ZIF-8 as a precursor at 900 °C in a N2 atmosphere. Pyrolysis produced a composite material of Fe and Zn nanoparticles dispersed in a N- and O-co-doped carbon matrix (Fe–Zn@NOC), where the partial evaporation of zinc enabled the formation of well-dispersed Fe nanoparticles. Fe–Zn@NOC displayed potent ascorbate oxidase-mimicking and catalase-mimicking activities, while the control Zn@NOC exhibited none of them, demonstrating that Fe-doping was paramount for the dual nanozymatic activities of Fe–Zn@NOC, and Fe nanoparticles thereby played key roles for the two active centers. Under the catalysis of Fe–Zn@NOC, the catalytic product H2O2 from the oxidation of ascorbic acid, consuming O2, was decomposed into O2 and H2O via its own catalase-mimicking activity, allowing catalytic oxidation cycling of ascorbic acid. This work may open new approaches for developing bifunctional nanozymes with oxidase- and catalase-mimicking activities for potential applications in areas such as biocatalysis, sensing, and energy conversion.

Graphical abstract: A bifunctional nanozyme with dual oxidase- and catalase-mimicking activities for catalytic oxidation cycling of its target substrate

Supplementary files

Article information

Article type
Communication
Submitted
24 Jul 2025
Accepted
31 Oct 2025
First published
31 Oct 2025

Nanoscale, 2025,17, 26689-26697

A bifunctional nanozyme with dual oxidase- and catalase-mimicking activities for catalytic oxidation cycling of its target substrate

S. Shen, M. Zhang, Y. Wang, W. Chen and C. Lei, Nanoscale, 2025, 17, 26689 DOI: 10.1039/D5NR03137K

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