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Enhancement of the Catalytic Activity of Chiral H 8 ‐BINOL Titanium Complexes by Introduction of Sterically Demanding Groups at the 3‐Position
Author(s) -
Hayashi Yasuki,
Yamamura Nobuaki,
Kusukawa Takahiro,
Harada Toshiro
Publication year - 2016
Publication title -
chemistry – a european journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.687
H-Index - 242
eISSN - 1521-3765
pISSN - 0947-6539
DOI - 10.1002/chem.201601854
Subject(s) - enantioselective synthesis , catalysis , substituent , aldehyde , chemistry , steric effects , bromide , intramolecular force , titanium , aryl , reagent , medicinal chemistry , combinatorial chemistry , stereochemistry , organic chemistry , alkyl
The activity of chiral titanium catalysts derived from H 8 ‐BINOL ligands in the enantioselective arylation of an aldehyde with PhTi(O i Pr) 3 is significantly enhanced by an increase of the size of the substituent at the 3‐position. High enantioselectivity (> 90 %  ee ) can be obtained even at a substrate/catalyst ratio (S/C) of 800 for DTBP‐H 8 ‐BINOL (DTBP=3,5‐di‐ tert ‐butylphenyl) and DAP‐H 8 ‐BINOL (DAP=3,5‐di(9‐anthraceny)phenyl). These titanium catalysts are successfully applied to the enantioselective arylation and heteroarylation of aldehydes at a S/C ratio of 400 by using organotitanium reagents generated in situ from bromide precursors. The remarkable weakening of the intramolecular aggregation of the two −Ti(O i Pr) 3 units in a DPP‐H 8 ‐BINOL (DPP=3,5‐diphenylpheny)‐derived bis‐titanium complex is revealed by X‐ray and variable‐temperature (VT)‐NMR studies. Based on these observations, a catalytic cycle, involving the rate‐limiting aryl group transfer followed by aldehyde complexation and enantioselective arylation, is proposed to account for the high activity of the 3‐substituted H 8 ‐BINOL catalyst system.

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