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Exceptional Long-Term Stability in Hydrogen Evolution via Defect-Engineered MIL-100 Synthesized by Controlled
Minoo Bagheri1, Fatemeh Momeni1, Mohammad Yaser Masoomi1
1Department of Chemistry, Faculty of Science, Arak University, Arak 3848177584, Iran.
None:
Two quasi-iron-based metal-organic frameworks, Q-MIL-100 and Q-MIL-101, were prepared via thermal partial deligandation to create large-scale structural defects. This pore engineering enhanced the density of unsaturated iron sites and created hierarchical porosity, serving as active centers for the catalytic hydrogen generation from NaBH4 hydrolysis. While pristine MIL-101 demonstrated higher activity than MIL-100, defect engineering reversed this trend, resulting in Q-MIL-100 achieving a superior hydrogen generation rate of 5360 mL·min-1·g-1 at 298 K, compared to 3360 mL·min-1·g-1 for Q-MIL-101. This enhanced performance is attributed to the synergistic combination of accessible active sites and an optimally restructured hierarchical pore architecture. Thermal activation to 313 K dramatically enhanced the hydrogen generation rates to 12,160 and 10,160 mL·min-1·g-1 for Q-MIL-100 and Q-MIL-101, respectively─a 2.3- to 3.0-fold increase over their performance at 298 K. The calculated activation energies were 41.7 kJ·mol-1 for Q-MIL-100 and 56.2 kJ·mol-1 for Q-MIL-101. A kinetic isotope effect indicated that the O-H bond cleavage in water was the rate-determining step. Q-MIL-100 demonstrated exceptional stability, retaining 92% of its initial activity after 16 reuse cycles. This work highlights the novel long-term stability of the engineered catalyst for practical hydrogen generation.
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