4.6 Article

Stabilized open metal sites in bimetallic metal-organic framework catalysts for hydrogen production from alcohols

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 9, 期 17, 页码 10869-10881

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ta00222h

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资金

  1. Hydrogen Materials-Advanced Research Consortium (HyMARC), Energy Materials Network under the U.S. Department of Energy, Office of Energy Efficiency and Renewable Energy, Hydrogen and Fuel Cell Technologies Office [DE-AC04-94AL85000]
  2. U.S. Department of Energy's National Nuclear Security Administration [DE-NA-0003525]
  3. Office of Science, Office of Basic Energy Sciences, of the U.S. Department of Energy [DE-AC0205CH11231]

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A new bimetallic MOF-74 catalyst was developed to stabilize open metal sites and promote dehydrogenation reactions, improving hydrogen productivity and selectivity. The catalyst also showed activity for dehydrogenation of other alcohols, making it a potential efficient solid catalyst.
Liquid organic hydrogen carriers such as alcohols and polyols are a high-capacity means of transporting and reversibly storing hydrogen that demands effective catalysts to drive the (de)hydrogenation reactions under mild conditions. We employed a combined theory/experiment approach to develop MOF-74 catalysts for alcohol dehydrogenation and examine the performance of the open metal sites (OMS), which have properties analogous to the active sites in high-performance single-site catalysts and homogeneous catalysts. Methanol dehydrogenation was used as a model reaction system for assessing the performance of five monometallic M-MOF-74 variants (M = Co, Cu, Mg, Mn, Ni). Co-MOF-74 and Ni-MOF-74 give the highest H-2 productivity. However, Ni-MOF-74 is unstable under reaction conditions and forms metallic nickel particles. To improve catalyst activity and stability, bimetallic (NixMg1-x)-MOF-74 catalysts were developed that stabilize the Ni OMS and promote the dehydrogenation reaction. An optimal composition exists at (Ni0.32Mg0.68)-MOF-74 that gives the greatest H-2 productivity, up to 203 mL g(cat)(-1) min(-1) at 300 degrees C, and maintains 100% selectivity to CO and H-2 between 225-275 degrees C. The optimized catalyst is also active for the dehydrogenation of other alcohols. DFT calculations reveal that synergistic interactions between the open metal site and the organic linker lead to lower reaction barriers in the MOF catalysts compared to the open metal site alone. This work expands the suite of hydrogen-related reactions catalyzed by MOF-74 which includes recent work on hydroformulation and our earlier reports of aryl-ether hydrogenolysis. Moreover, it highlights the use of bimetallic frameworks as an effective strategy for stabilizing a high density of catalytically active open metal sites.

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