An efficient furfural oxidation active electrocatalyst based on electron beam irradiation and a preparation method and application thereof

CN118384915BActive Publication Date: 2026-07-24SHANGHAI UNIV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SHANGHAI UNIV
Filing Date
2024-03-20
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

Existing precious metal catalysts are expensive and complex to prepare, making it difficult to achieve efficient and stable furfural oxidation. Furthermore, existing carbon quantum dot composite materials have weak furfural oxidation activity, which cannot meet industrial needs.

Method used

By combining carbon quantum dots and NiFe-MOF nanosheets with electron beam irradiation, a fluorine- and nitrogen-doped carbon quantum dot-NiFe-MOF nanosheet composite material is formed using the radiation etching effect generated by electron beam irradiation, which serves as a highly efficient active electrocatalyst for furfural oxidation.

Benefits of technology

It achieves simple, low-cost, environmentally friendly and high-yield furfural oxidation performance with a current density as high as 28 mA·cm-2, good repeatability and electrocatalytic stability, and has broad prospects for industrial application.

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Abstract

This invention relates to a highly efficient active electrocatalyst for furfural oxidation based on electron beam irradiation, its preparation method, and its application. The preparation method includes the following steps: dissolving an aminobenzene precursor and a fluorine-containing precursor in a first organic solvent, performing a hydrothermal reaction, filtering, and dialyzing to obtain a carbon quantum dot stock solution; dissolving the carbon quantum dot stock solution and a carboxylic acid in a second organic solvent to obtain a carbon quantum dot-ligand solution; adding an inorganic salt solution of nickel and iron to the carbon quantum dot-ligand solution, mixing thoroughly, adding triethylamine, irradiating with an electron beam, centrifuging, washing, and vacuum drying to obtain a fluorine-nitrogen-doped carbon quantum dot-NiFe-MOF nanosheet composite material. Compared with existing technologies, the carbon quantum dots in this invention have a dual function as structure regulators and active sites, and electron beam irradiation can produce a radiation etching effect on the product, leading to defects inside the material, thus giving the synthesized fluorine-nitrogen-doped carbon quantum dot-NiFe-MOF nanosheets highly efficient electrocatalytic furfural oxidation activity.
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