Junjun Lu, Kequan Yao, Xinxin Xu, Jinzhao Ou, Qiang Wang
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引用次数: 0
Abstract
Pathogenic bacteria are widely distributed in water environments globally, causing numerous waterborne diseases and posing significant threats to human health. Fe3O4, as a nanozyme with peroxidase-like (POD-like) activity, has been recognized as an inherent bactericidal agent. To enhance the POD-like activity and antibacterial properties of n-type Fe3O4, a p-n heterojunction was constructed with p-type NiO. The Fermi level difference between Fe3O4 and NiO induces a built-in electric field in NiO/Fe3O4, optimizing the interfacial structure for POD-like catalysis. This material exhibits a unique hollow morphology with promising POD-like activity. Mechanistic calculations further confirm the charge distribution and the formation of the internal electric field within the p-n heterojunction. The d-band center of NiO/Fe3O4 is positioned close to the Fermi level, enhancing the interaction between NiO/Fe3O4 and H2O2, facilitating O-O bond cleavage, and improving POD-like activity. Additionally, NiO/Fe3O4 demonstrates excellent antibacterial performance against Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus). Furthermore, it achieves effective “point-of-use” water disinfection in practical water systems. This study highlights that the synergistic effects of the p-n heterojunction and the built-in electric field can significantly enhance POD-like activity, providing a novel approach for developing nanozymes with POD activity for “point-of-use” water disinfection.
期刊介绍:
The Chemical Engineering Journal is an international research journal that invites contributions of original and novel fundamental research. It aims to provide an international platform for presenting original fundamental research, interpretative reviews, and discussions on new developments in chemical engineering. The journal welcomes papers that describe novel theory and its practical application, as well as those that demonstrate the transfer of techniques from other disciplines. It also welcomes reports on carefully conducted experimental work that is soundly interpreted. The main focus of the journal is on original and rigorous research results that have broad significance. The Catalysis section within the Chemical Engineering Journal focuses specifically on Experimental and Theoretical studies in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. These studies have industrial impact on various sectors such as chemicals, energy, materials, foods, healthcare, and environmental protection.