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Active electronic structure derived by Fe-Cl-C coordination of single-atom cathode applied in antibiotics degradation by electro-Fenton: Enhanced transformation of oxygen to hydroxyl radicals via 3-electron pathway.
- Source :
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Chemical Engineering Journal . Oct2023, Vol. 474, pN.PAG-N.PAG. 1p. - Publication Year :
- 2023
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Abstract
- [Display omitted] • Electronic structure of Fe-Cl-C catalytic sites was tuned to enhance EF reaction. • Fe-Cl 2 C 2 and Fe-Cl 2 C 3 configurations were constructed with Fe2+ and Fe3+ states. • Reactions from O 2 to •OH were verified via 3-electron pathway by two configurations. • FeCl 2 C x /PC showed efficient antibiotics removal from water and structure stability. • •OH as a major ROS contributed on AMX decaying by opening β -lactam ring. Designing heterogeneous catalysts with atomically dispersed active sites is vital to promote electro-Fenton (EF) activity, but how to regulate the electronic structure of metal centers to overcome the rate-limiting step over electron transfer triggered by reduction-/oxidation-state cycle in Fenton still remains a great challenge. Herein, we report a systematic investigation into heteroatom-doped engineering for tuning the electronic structure of iron single-atom sites by integrating electron-acceptor chlorine atoms into MOF-derived carbon substrate, in which the conversion of O 2 toward •OH in EF were enhanced over the electronic structures of Fe-Cl 2 C 2 and Fe-Cl 2 C 3 formed by iron unsaturated coordination with chlorine and carbon atoms via a 3-electron pathway, and overcame the restriction of the rate-limiting step for reducing oxidized metal ions. The resulting accumulative concentration of •OH by FeCl 2 C x /PC surpassed that of iron oxide nanoparticles by almost 2 times. Iron site shielding experiments and density functional theory calculations further demonstrated that the vital effect of Fe-Cl 2 C 3 configuration corresponds to Fe(III) on Fe center contributes to H 2 O 2 production and the dominant role of Fe-Cl 2 C 2 configuration corresponds to Fe(II) in H 2 O 2 activation to form •OH. Meanwhile, FeCl 2 C x /PC exhibited less pH dependence, high stability, and efficient applicability for various antibiotics and wastewater remediation. The above results provide a new perspective into the reaction mechanism of multi-electron oxygen reduction pathway on single-atom catalysts by modulating the electronic structure of chlorine coordination. [ABSTRACT FROM AUTHOR]
Details
- Language :
- English
- ISSN :
- 13858947
- Volume :
- 474
- Database :
- Academic Search Index
- Journal :
- Chemical Engineering Journal
- Publication Type :
- Academic Journal
- Accession number :
- 172844315
- Full Text :
- https://doi.org/10.1016/j.cej.2023.145545