摘要
Controlled synthesis of metal–organic framework (MOF)-derived Mg-Zn hybrid nanostructure was demonstrated for the development of basic catalysts applied in biodiesel production from soybean oil. Two types of Mg-Zn hybrid nanostructures were successfully fabricated under different atmospheres (Ar, air), (1) MgO nanoparticles encapsulated in Zn-based MOF (MgO@Zn-MOF) and (2) MgO nanoparticles uniformly decorated on ZnO nanoparticles derived from Zn-MOF (MgO@ZnO), respectively. Ultrafine MgO nanoparticles (<5 nm for MgO@Zn-MOF and ≈10 nm for MgO@ZnO) were successfully synthesized and homogeneously dispersed in the MOF-derived Mg-Zn hybrid nanostructures. Significant increases in the specific surface area (i.e., a maximum of 1048.5 m 2 /g) and corresponding basicity (i.e., by a maximum of 2.1 times) were achievable by using MOF-based strategy comparing to the Mg-Zn catalyst prepared by a conventional solution-based approach. High 3-cycle stability and high yields of fatty acid methyl esters at a stoichiometric feed ratio 3 were both achievable, 67.6% and 73.3%, by using MgO@Zn-MOF and MgO@ZnO as the catalysts, respectively. The work demonstrates a prototype study of utilizing MOF to develop high-performance basic nanocatalysts through fundamental understanding of material synthesis by design versus their corresponding activities.