4.6 Article

Bifunctional PDDA-stabilized β-Fe2O3 nanoclusters for improved photoelectrocatalytic and magnetic field enhanced photocatalytic applications

期刊

CATALYSIS SCIENCE & TECHNOLOGY
卷 12, 期 8, 页码 2659-2669

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ROYAL SOC CHEMISTRY
DOI: 10.1039/d2cy00099g

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资金

  1. National Natural Science Foundation of China [21972156]
  2. Natural Science Foundation of Zhejiang Province [LY19E010002]

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Photocatalytic water splitting and water pollutant degradation are crucial for addressing energy and environmental issues. In this study, a bifunctional catalyst with excellent catalytic activity was successfully synthesized, exhibiting a significant enhancement in degradation activity under a magnetic field. This research provides a new strategy for the preparation of highly dispersed β-Fe2O3 nanoclusters and the development of stable organic/inorganic composite photocatalysts.
Photocatalytic water splitting for hydrogen production and water pollutant degradation is a frontier topic to solve energy and environmental problems. In particular, applying electric and magnetic fields on photocatalysts is the most promising solution to improve their catalytic activity. In this work, bifunctional catalyst PDDA-coated beta-Fe2O3 nanoclusters (beta-Fe2O3@PDDA) have been successfully synthesized by a simple one-pot method at 200 degrees C. beta-Fe2O3@PDDA exhibits excellent photoelectrocatalytic (PEC) activity for the oxygen evolution reaction (OER) with an overpotential of 300 mV, Tafel slope of 45 mV dec(-1) and good catalytic stability. Moreover, beta-Fe2O3@PDDA exhibited a good magnetic field-enhanced photocatalytic (MF-PC) RhB degradation activity under artificial simulated sunlight; the photocatalytic efficiency can be improved by 44% under an external magnetic field than that without a magnetic field. The surface PDDA-coated beta-Fe2O3 can be stably dispersed in water for more than 10 days without agglomeration, which is of great significance for the MF-PC degradation of water pollutants in practical applications. The high catalytic activity for MF-PC is attributed to the magnetic field-suppressed electron-hole recombination and the spin-polarized properties of beta-Fe2O3 in photocatalysis. Our study provides a new strategy for the preparation of highly dispersed beta-Fe2O3 nanoclusters under mild conditions and the development of ultrastable organic/inorganic composite photocatalysts. This opens up a new avenue for developing electric and magnetic field-enhanced photocatalysts for use in clean energy and environmental control.

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