In the present paper, the ab initio molecular orbital method is employed to study the structures of the adducts of borane and aromatic ketone to chiral cyclic sulfur-containing oxazaborolidine used as a catalyst in the enantioselective reduction of aromatic ketone. The catalyst-borane-ketone adducts
Quantum chemical study on enantioselective reduction of keto oxime ether with borane catalyzed by oxazaborolidine. Part 1. Structures of catalyst–borane–keto oxime ether adducts
✍ Scribed by Ming Li; Wenxu Zheng; Feng Yang; Anmin Tian
- Publisher
- John Wiley and Sons
- Year
- 2001
- Tongue
- English
- Weight
- 267 KB
- Volume
- 81
- Category
- Article
- ISSN
- 0020-7608
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✦ Synopsis
In the present work, quantum chemical computations of the enantioselective reduction of keto oxime ether with borane catalyzed by chiral oxazaborolidine are performed by means of the Hartree-Fock and the density functional methods. The structures of oxazaborolidine, oxazaborolidine-borane adduct, and oxazaborolidine-borane-keto oxime ether adducts are optimized completely at the HF/6-31g * and B3LYP/6-31g * levels and their properties studied in detail. The oxazaborolidine catalyst is a twisted chair structure and reacts with borane at the nitrogen site of the catalyst to form the catalyst-borane adduct whose formation reaction is exothermic. The catalyst-borane adduct reacts easily with keto oxime ether to form catalyst-borane-keto oxime ether adducts that have eight stable structures. The coordination of the carbonyl oxygen in keto oxime ether at the boron site of the catalyst is of more advantage to the enantioselective reduction of keto oxime ether than the coordination of the oxime nitrogen in the keto oxime ether at the boron site is. c 2001
📜 SIMILAR VOLUMES
The chiral cyclic sulfur-containing oxazaborolidine catalyst reacts with aromatic ketone in the presence of borane to form the catalyst-alkoxyborane adduct with a B-O-B-N four-membered ring. The ab initio molecular orbital method is employed to study the structures of the catalyst-alkoxyborane adduc
The ab initio molecular orbital method is employed to study the structures and properties of chiral cyclic sulfur-containing oxazaborolidine, as a catalyst, and its borane adducts. All the structures are optimized completely by means of the Hartree-Fock method at 6-31g \* basis sets. The catalyst is