Continuously updated synthesis method about 36620-11-8

This literature about this compound(36620-11-8)Application In Synthesis of Bis(norbornadiene)rhodium (I) tetrafluoroboratehas given us a lot of inspiration, and I hope that the research on this compound(Bis(norbornadiene)rhodium (I) tetrafluoroborate) can be further advanced. Maybe we can get more compounds in a similar way.

Most of the natural products isolated at present are heterocyclic compounds, so heterocyclic compounds occupy an important position in the research of organic chemistry. A compound: 36620-11-8, is researched, SMILESS is [F-][B+3]([F-])([F-])[F-].C12=C3[Rh+]14567(C8=C5C9C6=C7C8C9)C%10=C4C2CC3%10, Molecular C14H8BF4RhJournal, Chinese Journal of Chemistry called A Computational Study of Asymmetric Hydrogenation of 2-Phenyl Acrylic Acids Catalyzed by a Rh(I) Catalyst with Ferrocenyl Chiral Bisphosphorus Ligand: The Role of Ion-Pair Interaction, Author is Fan, Xiangru; Zheng, Lini; Yang, Yuhong; Dong, Xiu-Qin; Zhang, Xumu; Chung, Lung Wa, the main research direction is phenyl acrylic acid rhodium catalyst asym hydrogenation mechanism.Application In Synthesis of Bis(norbornadiene)rhodium (I) tetrafluoroborate.

Asym. hydrogenation reaction is one of the most efficient synthetic methods to form useful chiral compounds for synthetic chem., medicinal chem. and material chem. Generally, the enantioselectivity of many hydrogenation reactions is controlled by steric hindrance between the chiral ligand and substrate. Recently, Zhang group developed a highly asym. hydrogenation of 2-aryl and 2-alkyl acrylic acids catalyzed by a Rh(I) catalyst with a chiral Wudaphos ligand. The excellent enantioselectivity of this asym. reaction was proposed to be controlled by ion-pair interaction between the substrate and chiral ligand. In this study, a systematic d. functional theory study has been carried out to investigate the reaction mechanism and origin of the enantioselectivity. Our computational results suggest that this reaction follows the classic mechanism involving oxidative addition of H2, migratory insertion and reductive elimination. Different from the C=C coordination to the metal in the common oxidative addition step, our study found that the chelation of the carboxyl group of the substrate to the cationic Rh(I) metal is more favorable in this oxidative addition step. The high enantioselectivity is proposed to be dictated by a better catalyst/substrate geometric complementarity in the major pathway to have less distortion of the catalyst for a strong ion-pair interaction.

This literature about this compound(36620-11-8)Application In Synthesis of Bis(norbornadiene)rhodium (I) tetrafluoroboratehas given us a lot of inspiration, and I hope that the research on this compound(Bis(norbornadiene)rhodium (I) tetrafluoroborate) can be further advanced. Maybe we can get more compounds in a similar way.

Reference:
Quinuclidine – Wikipedia,
Quinuclidine | C7H13N | ChemSpider