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N, F Co-Doped Carbon Derived from Spent Bleaching Earth Waste As Oxygen Electrocatalyst Support

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Journal Chempluschem
Specialty Chemistry
Date 2024 Aug 16
PMID 39149961
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Abstract

Affordable nitrogen and fluorine co-doped carbon nanostructure was prepared from the hazardous industrial waste of edible oil refinery, spent bleaching earth (SBE), and used as raw material for obtaining high-performance non-noble metal bifunctional oxygen electrocatalysts. Waste SBE contains 35 % residue non-saturated oil as a carbon source and the assistance of montmorillonite (MMT) as the template. This study converts waste SBE into a fluorine-doped carbon nanostructure through a pyrolysis process followed by removing the aluminosilicate layers of the MMT by HF etching. Furthermore, the impregnation of the support with Co and Fe nitrates readily gives rise to N, F co-doped carbon (NFC) electrocatalysts, as confirmed by XPS analysis. Electrochemical results evidenced that the Co-NFC catalyst proved to be a valuable bifunctional competitor for oxygen reduction reaction and oxygen evolution reaction in alkaline media, showing activity in both reactions and superior stability compared with the Fe-NFC catalyst in accelerated tests. This work offers a straightforward, economical, and eco-friendly strategy for designing N, F co-doped carbon-based electrocatalysts for oxygen reactions in electrochemical devices.

Citing Articles

N, F Co-Doped Carbon Derived from Spent Bleaching Earth Waste as Oxygen Electrocatalyst Support.

Aghabarari B, Ebadati E, Cebollada J, Fernandez-Inchusta D, Martinez-Huerta M Chempluschem. 2024; 89(12):e202400160.

PMID: 39149961 PMC: 11639644. DOI: 10.1002/cplu.202400160.

References
1.
Li M, Bai L, Wu S, Wen X, Guan J . Co/CoO Nanoparticles Embedded on Carbon for Efficient Catalysis of Oxygen Evolution and Oxygen Reduction Reactions. ChemSusChem. 2018; 11(10):1722-1727. DOI: 10.1002/cssc.201800489. View

2.
Zhang B, Jiang K, Wang H, Hu S . Fluoride-Induced Dynamic Surface Self-Reconstruction Produces Unexpectedly Efficient Oxygen-Evolution Catalyst. Nano Lett. 2018; 19(1):530-537. DOI: 10.1021/acs.nanolett.8b04466. View

3.
Niu Y, Huang X, Wu X, Zhao L, Hu W, Li C . One-pot synthesis of Co/N-doped mesoporous graphene with embedded Co/CoO nanoparticles for efficient oxygen reduction reaction. Nanoscale. 2017; 9(29):10233-10239. DOI: 10.1039/c7nr03897f. View

4.
Kim J, Sa Y, Jeong H, Joo S . Roles of Fe-N and Fe-FeC@C Species in Fe-N/C Electrocatalysts for Oxygen Reduction Reaction. ACS Appl Mater Interfaces. 2017; 9(11):9567-9575. DOI: 10.1021/acsami.6b13417. View

5.
Zhang J, Chen Y, Song X, Liu Y, Zhao J, Wang F . Synergistic adsorption and degradation of diclofenac by zero-valent iron modified spent bleaching earth carbon: Mechanism and toxicity assessment. J Hazard Mater. 2022; 432:128753. DOI: 10.1016/j.jhazmat.2022.128753. View