Multifaceted Substrate–Ligand Interactions Promote the Copper-Catalyzed Hydroboration of Benzylidenecyclobutanes and Related Compounds

A unified synthetic strategy to access tertiary four-membered carbo/heterocyclic boronic esters is reported. The use of a Cu­(I) catalyst in combination with a modified 1,2-bis­(diphenylphosphino)­benzene (dppbz) ligand enables regioselective hydroboration of various trisubstituted benzylidenecyclob...

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Veröffentlicht in:ACS catalysis 2020-11, Vol.10 (21), p.13075-13083
Hauptverfasser: Kang, Taeho, Erbay, Tuğçe G, Xu, Kane L, Gallego, Gary M, Burtea, Alexander, Nair, Sajiv K, Patman, Ryan L, Zhou, Ru, Sutton, Scott C, McAlpine, Indrawan J, Liu, Peng, Engle, Keary M
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Sprache:eng
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Zusammenfassung:A unified synthetic strategy to access tertiary four-membered carbo/heterocyclic boronic esters is reported. The use of a Cu­(I) catalyst in combination with a modified 1,2-bis­(diphenylphosphino)­benzene (dppbz) ligand enables regioselective hydroboration of various trisubstituted benzylidenecyclobutanes and carbo/heterocyclic analogs. The reaction conditions are mild, and the method tolerates a wide range of medicinally relevant heteroarenes. The protocol can be conveniently conducted on a gram scale, and the tertiary boronic ester products undergo facile diversification into valuable targets. Reaction kinetics and computational studies indicate that the migratory insertion step is turnover-limiting and accelerated by electron-withdrawing groups on the dppbz ligand. Energy decomposition analysis calculations reveal that electron-deficient P-aryl groups on the dppbz ligand enhance the T-shaped π/π interactions with the substrate and stabilize the migratory insertion transition state.
ISSN:2155-5435
2155-5435
DOI:10.1021/acscatal.0c03622