Issue 7, 2023

An FeSx doped three-dimensional covalent organic framework for degradation of dyes

Abstract

Fenton reactions are one of the most progressive advanced oxidation processes (AOPs), which have been widely employed in industrial sewage treatment and pollutant control. Here we report a three-dimensional covalent organic framework (3D COF) with an stp net, termed JUC-598, which has a high specific surface area (∼1900 m2 g−1) and interconnected hierarchical pores (micropores of ∼1.26 nm and mesopores of ∼3.62 nm). Furthermore, we chose a solvothermal method to encapsulate FeSx nanoparticles into this COF (named JUC-598@FeSx) as Fenton catalysts. Due to well-defined hierarchical pores, JUC-598 can load the iron-compound nanoparticles to achieve nanoscale confinement and efficient dispersion for performance enhancement. Transmission electron microscopy (TEM) and corresponding energy dispersive spectroscopy (EDS) mapping analysis revealed that the encapsulation and dispersion of FeSx nanoparticles (3–4 nm) in JUC-598 were successfully realized. The JUC-598@FeSx as catalyst was used for Fenton reactions, and the results suggested that JUC-598@FeSx displayed excellent catalytic degradation efficiency, which is 95% towards crystal violet (CV) and 91% for methylene blue (MB) in 90 min, respectively. Additionally, JUC-598@FeSx can be separated from the reaction system by centrifugation and reused at least three times with a slight change of catalytic activity. This work thus promotes the promising application of COF materials in environmental treatment.

Graphical abstract: An FeSx doped three-dimensional covalent organic framework for degradation of dyes

Supplementary files

Article information

Article type
Research Article
Submitted
30 Nov 2022
Accepted
31 Jan 2023
First published
02 Feb 2023

Mater. Chem. Front., 2023,7, 1431-1436

An FeSx doped three-dimensional covalent organic framework for degradation of dyes

J. Song, C. Yu, Y. Liu, J. Ren, J. Liu, Z. Wang, L. Zhu, J. Fu, B. Tang, S. Qiu, Y. Wang and Q. Fang, Mater. Chem. Front., 2023, 7, 1431 DOI: 10.1039/D2QM01245F

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