The “4 + 1” strategy fabrication of iron single-atom catalysts with selective high-valent iron-oxo species generation
Стратегия «4 + 1» изготовления одноатомных железных катализаторов с селективной генерацией высоковалентных железо‑оксо видов
2024-05-30
SCID: 54.1/d4vffnjs
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Fe(IV)=O high-valent iron-oxo speciesFeN5 configurationperoxymonosulfate (PMS)-based Fenton-like chemistrypolyvinylidene difluoride membrane continuous flow devicesingle-atom catalysts
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Abstract (AI)
Single-atom catalysts (SACs) with atomic dispersion active sites have exhibited huge potentials in peroxymonosulfate (PMS)-based Fenton-like chemistry in water purification. However, four-N coordination metal (MN 4 ) moieties often suffer from such problems as low selectivity and narrow workable pH. How to construct SACs in a controllable strategy with optimized electronic structures is of great challenge. Herein, an innovative strategy (i.e., the “4 + 1” fabrication) was devised to precisely modulate the first-shell coordinated microenvironment of FeN 4 SAC using an additional N (SA-FeN 5 ). This leads to almost 100% selective formation of high-valent iron-oxo [Fe(IV)═O] (steady-state concentration: 2.00 × 10 −8 M) in the SA-FeN 5 /PMS system. In-depth theoretical calculations unveil that FeN 5 configuration optimizes the electron distribution of monatomic Fe sites, which thus fosters PMS adsorption and reduces the energy barrier for Fe(IV)═O generation. SA-FeN 5 was then attached to polyvinylidene difluoride membrane for a continuous flow device, showing long-term abatement of the microcontaminant. This work furnishes a general strategy for effective PMS activation and selective high-valent metal-oxo species generation by high N-coordination number regulation in SACs, which would provide guidance in the rational design of superior environmental catalysts for water purification.
Key Findings
1
A "4 + 1" fabrication strategy was developed to add an extra nitrogen to FeN4 single-atom catalysts, producing SA-FeN5 with controlled first-shell coordination.
2
SA-FeN5 generates almost 100% selective formation of high-valent iron-oxo [Fe(IV)=O] in the SA-FeN5/peroxymonosulfate (PMS) system.
3
SA-FeN5 was incorporated into a polyvinylidene difluoride membrane for a continuous-flow device and demonstrated long-term removal of microcontaminants.
4
The steady-state concentration of Fe(IV)=O produced by SA-FeN5/PMS is 2.00 × 10−8 M as reported.
5
Theoretical calculations show FeN5 optimizes electron distribution at monatomic Fe sites, enhancing PMS adsorption and lowering the energy barrier for Fe(IV)=O formation.
Research Object
Single-atom iron catalysts with a FeN5 first-shell coordination environment (SA-FeN5)
Research Subject
Selective generation of high-valent iron-oxo species (Fe(IV)=O) via PMS activation enabled by the '4 + 1' fabrication strategy that modulates the FeN5 electronic/coordination microenvironment and improves PMS adsorption and Fe(IV)=O formation
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2024-05-30
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