| Literature DB >> 26836273 |
Zhanyong Li1, Neil M Schweitzer1, Aaron B League2, Varinia Bernales2, Aaron W Peters1, Andrew Bean Getsoian3, Timothy C Wang1, Jeffrey T Miller3,4, Aleksei Vjunov5, John L Fulton5, Johannes A Lercher5,6, Christopher J Cramer2, Laura Gagliardi2, Joseph T Hupp1, Omar K Farha1,7.
Abstract
Developing supported single-site catalysts is an important goal in heterogeneous catalysis since the well-defined active sites afford opportunities for detailed mechanistic studies, thereby facilitating the design of improved catalysts. We present herein a method for installing Ni ions uniformly and precisely on the node of a Zr-based metal-organic framework (MOF), NU-1000, in high density and large quantity (denoted as Ni-AIM) using atomic layer deposition (ALD) in a MOF (AIM). Ni-AIM is demonstrated to be an efficient gas-phase hydrogenation catalyst upon activation. The structure of the active sites in Ni-AIM is proposed, revealing its single-site nature. More importantly, due to the organic linker used to construct the MOF support, the Ni ions stay isolated throughout the hydrogenation catalysis, in accord with its long-term stability. A quantum chemical characterization of the catalyst and the catalytic process complements the experimental results. With validation of computational modeling protocols, we further targeted ethylene oligomerization catalysis by Ni-AIM guided by theoretical prediction. Given the generality of the AIM methodology, this emerging class of materials should prove ripe for the discovery of new catalysts for the transformation of volatile substrates.Entities:
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Year: 2016 PMID: 26836273 DOI: 10.1021/jacs.5b12515
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419