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Updated: Jan 17, 2026

Synthesis of Single-Crystalline Core-Shell Metal-Organic Frameworks
Published on: February 10, 2023
General synthesis of core-shell FeAlOx nanosphere-based nanoreactors with enhanced catalytic performance
Shun Zhao1, Pei Liu2, Ping Li3
1School of Chemistry and Environmental Engineering, Wuhan Institute of Technology, Wuhan, 430073, P. R. China. jbxi@wit.edu.cn.
Abstract:
Rationally designing and fabricating high-performance core-shell nanostructures for catalytic organic synthesis is significant yet challenging. Here, we report a solvothermal/calcination strategy to prepare novel core-shell iron-aluminum oxide (FeAlOx) nanosphere-based nanoreactors incorporating active heterometals (AHM = Pd, Cu, or Mn). Leveraging the synergistic benefits of their unique core-shell structure, high specific surface area (178 m2 g-1), and well-dispersed heterometallic active sites, AHM/FeAlOx nanoreactors (e.g., Pd/FeAlOx, Cu/FeAlOx, Mn/FeAlOx) demonstrate outstanding catalytic performance in organic reactions such as 4-nitrophenol reduction, 2,4-dinitroaniline reduction, and benzyl alcohol selective oxidation. Notably, the Pd/FeAlOx nanoreactor achieves an unprecedented average turnover frequency of 165.8 min-1 in 4-nitrophenol reduction, 8-fold higher than those of benchmark metal oxide-supported catalysts (typically 0.01-20.4 min-1), while maintaining over 95% activity after 11 catalytic cycles. These findings establish a versatile platform for rational design principles and scalable synthesis protocols for FeAlOx-based nanoreactors, enabling their tailored implementation in advanced organic synthesis through architecturally controlled confinement catalysis.
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