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Ortho-Alkoxy-benzamide Directed Formation of a Single Crystalline Hydrogen-bonded Crosslinked Organic Framework and Its Boron Trifluoride Uptake and Catalysis
Authors:Fangzhou Li  Dr. Errui Li  Dr. Krishanu Samanta  Zhaoxi Zheng  Dr. Lianqian Wu  Albert D. Chen  Prof. Dr. Omar K. Farha  Dr. Richard J. Staples  Prof. Dr. Jia Niu  Prof. Dr. Klaus Schmidt-Rohr  Prof. Dr. Chenfeng Ke
Affiliation:1. Department of Chemistry, Dartmouth College, Hanover, NH 03755 USA;2. Department of Chemistry, Brandeis University, Waltham, MA 02453 USA;3. Department of Chemistry, Boston College, Chestnut Hill, MA 02467 USA;4. Department of Chemistry, Northwestern University, Evanston, IL 60208 USA;5. Department of Chemistry, Michigan State University, East Lancing, MI 48824 USA
Abstract:Boron trifluoride (BF3) is a highly corrosive gas widely used in industry. Confining BF3 in porous materials ensures safe and convenient handling and prevents its degradation. Hence, it is highly desired to develop porous materials with high adsorption capacity, high stability, and resistance to BF3 corrosion. Herein, we designed and synthesized a Lewis basic single-crystalline hydrogen-bond crosslinked organic framework (HCOF-50) for BF3 storage and its application in catalysis. Specifically, we introduced self-complementary ortho-alkoxy-benzamide hydrogen-bonding moieties to direct the formation of highly organized hydrogen-bonded networks, which were subsequently photo-crosslinked to generate HCOFs. The HCOF-50 features Lewis basic thioether linkages and electron-rich pore surfaces for BF3 uptake. As a result, HCOF-50 shows a record-high 14.2 mmol/g BF3 uptake capacity. The BF3 uptake in HCOF-50 is reversible, leading to the slow release of BF3. We leveraged this property to reduce the undesirable chain transfer and termination in the cationic polymerization of vinyl ethers. Polymers with higher molecular weights and lower polydispersity were generated compared to those synthesized using BF3 ⋅ Et2O. The elucidation of the structure–property relationship, as provided by the single-crystal X-ray structures, combined with the high BF3 uptake capacity and controlled sorption, highlights the molecular understanding of framework-guest interactions in addressing contemporary challenges.
Keywords:BF3 Sorption  Controlled BF3 Release for Polymerization  Hydrogen-Bonded Crosslinked Organic Framework  Self-Complementary Hydrogen Bonding  Single-Crystal to Single-Crystal Transformation
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