4.7 Article

Multifunctional photo-Fenton-active membrane for solar-driven water purification

期刊

JOURNAL OF MEMBRANE SCIENCE
卷 660, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.memsci.2022.120832

关键词

Photo-fenton; Membrane functionalization; Polypyrrole; Zerovalent iron; Anti-oil-fouling; Self-cleaning

资金

  1. institutional program of KIST [2E31932]
  2. National Research Foundation of Korea (NRF) - Korea government (MSIT) [2021R1C1C1005774]
  3. National Research Foundation of Korea [2021R1C1C1005774] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

In this study, a highly reactive and stable Photo-Fenton-active (PFA) membrane was fabricated via in-situ functionalization of polypyrrole (PPy) and zerovalent iron (ZVI) nanoparticles, providing an effective strategy for water purification applications. The PFA membrane showed high surface wettability, photothermal performance, and photo-Fenton reactivity, enabling effective control of organic contaminants in water.
Photo-Fenton-active (PFA) membranes can provide an effective strategy to control various organic pollutants in water purification applications by simultaneously promoting photocatalysis and Fenton reaction. However, the fabrication of PFA membranes with high reactivity and stability remains a significant technical challenge. In this study, we present a simple and versatile technique to fabricate a PFA membrane via in-situ functionalization of polypyrrole (PPy, i.e., photothermal catalyst) and zerovalent iron (ZVI, i.e., photo-Fenton catalyst) nanoparticles. The proposed one-pot two-step protocol involves vapor phase polymerization of pyrrole and subsequent reduction of iron source, which successfully creates a thin catalyst coating on a porous substrate without reducing membrane porosity. The PFA membrane with the dual PPy/ZVI catalyst layer showed high surface wettability, photothermal performance, and photo-Fenton reactivity, thereby enabling effective control of organic contaminants. Specifically, the PFA membrane exhibited near complete removal (>97%) of organic dye molecules in five repeated photo-Fenton-oxidation cycles. We found that robust anchoring of the ZVI within the PPy layer is an important factor for stable photo-Fenton activity of the PFA membrane. The enhanced anti-fouling and self-cleaning properties of the PFA membrane were further demonstrated in oil-emulsion filtration experiments with multiple cycles. Our innovative fabrication approach can serve as a versatile platform for the development of highly reactive and stable PFA membranes for a wide range of solar-driven water treatment applications.

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