Tailoring of PVDF for retrieval of piezoelectric powders to optimize piezo-catalytic water treatment

Abstract

Powder-based piezoelectric catalysts have been widely examined due to their high catalytic activity for applications such as water treatment and dye degradation. However, challenges remain which are associated with secondary pollution as a result of employing a powder-based catalyst. While the use of bulk catalysts can overcome this challenge, their catalytic activity has been shown to decrease significantly compared to fine-scale catalytic powders. In this study, a simple, efficient, cost-effective and in-situ approach is developed that is able successfully retrieve a powder-based catalyst by coating the catalytic particles with dopamine and exploiting the interaction between dopamine and a porous polyvinylidene fluoride (PVDF) substrate that is able to collect the catalytic particles. Detailed characterisation and molecular dynamics modeling is used to determine the mechanisms of the chemical interactions and catalysis. The universality of this new approach is demonstrated by conducting a range of experiments with a range of ceramic particulates, catalyst morphologies and potential dyes. Using this new strategy, we demonstrate the ability of ferroelectric particles to achieve a high piezocatalytic activity while being anchored onto a porous PVDF layer, thereby limiting secondary pollution. This work therefore provides a novel approach for the retrieval of powder-based catalysts, with potential to expand their application potential to other forms of powder-based catalysts.

Supplementary files

Article information

Article type
Paper
Submitted
09 May 2024
Accepted
24 Jul 2024
First published
25 Jul 2024

J. Mater. Chem. A, 2024, Accepted Manuscript

Tailoring of PVDF for retrieval of piezoelectric powders to optimize piezo-catalytic water treatment

K. Feng, Y. Zhang, X. Zhou, Y. Zhao, H. Gong, X. Zhou, H. Luo, D. Zhang and C. Bowen, J. Mater. Chem. A, 2024, Accepted Manuscript , DOI: 10.1039/D4TA03219E

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