Issue 18, 2022

Shape-controlled Mn–Fe PBA derived micromotors for organic pollutant removal

Abstract

A new simple strategy to prepare Mn–Fe Prussian blue analogue (PBA) derived oxide micromotors through co-precipitation and heat treatment is demonstrated. The morphology of the precursors could be precisely controlled from cubic-like to spherical-like by introducing citrate. Because of the synergistic catalytic reaction of bimetallic Mn–Fe oxides, micromotors with different shapes could be powered efficiently in H2O2 solution. In particular, the obtained cubic Mn–Fe oxide micromotors showed strong propulsion at a speed of 71.21 μm s−1 in 1% H2O2 solution. With dual mechanisms of adsorption bubble separation (ABS) and Fenton oxidation, the cubic Mn–Fe oxide micromotors showed extraordinary removal ability for Rhodamine B (RhB) as a simulated pollutant and could remove up to 95.2% of RhB within 30 minutes. Magnetic Fe3O4 contained in the component not only could degrade organic pollutants, but also could be recycled by magnetic field and reused with high degradation efficiency. These dual-functional metal oxide catalytic micromotors provide a practical and environmentally friendly strategy for environmental restoration.

Graphical abstract: Shape-controlled Mn–Fe PBA derived micromotors for organic pollutant removal

Supplementary files

Article information

Article type
Paper
Submitted
01 Mar 2022
Accepted
05 Apr 2022
First published
05 Apr 2022

New J. Chem., 2022,46, 8611-8618

Shape-controlled Mn–Fe PBA derived micromotors for organic pollutant removal

J. Huang, Q. Shan, Y. Fang, N. Zhao and X. Feng, New J. Chem., 2022, 46, 8611 DOI: 10.1039/D2NJ01022D

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