Controlling the electronic structure of non-noble metal active sites is the central challenge to unlocking fast and durable hydrogen release from hydrous hydrazine (N2H4·H2O, 8.0 wt%), a promising liquid hydrogen-storage material. Herein, for the first time, we demonstrate that TiO2-engineered NH2-MIL-101(Cr) enables strong electronic metal-support interaction (EMSI) to generate confined electron-rich Ni active sites with an ultrafine size of 3.2 nm, thereby markedly accelerating the rate-determining N-H bond activation. As a result, the Ni/TiO2-NH2-MIL-101 delivers a turnover frequency (TOF) of 422 h-1 at 343 K for N2H4·H2O dehydrogenation, 28, 10, and 4 times higher than unsupported Ni NPs (15 h-1), Ni/MIL-101 (42 h-1), and Ni/NH2-MIL-101 (98 h-1), respectively, while maintaining 100% H2 selectivity and exceptional stability over 20 cycles, outperforming the state-of-the-art nonprecious metal catalysts reported for this reaction. It also exhibits superior catalytic activity and robust durability toward hydrazine borane (N2H4BH3, 15.4 wt%) dehydrogenation, achieving a TOF up to 881 h-1 at 343 K. These findings demonstrate that TiO2-driven electronic activation of Ni sites in MOFs offers a generalizable support-engineering strategy for efficient and durable hydrogen production from liquid hydrogen-storage materials.
山东省济南市章丘区文博路2号
齐鲁师范学院 genelibs生信实验室
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