From aryl bromides to enantioenriched benzylic alcohols in a single flask: Catalytic asymmetric arylation of aldehydes
From aryl bromides to enantioenriched benzylic alcohols in a single flask: Catalytic asymmetric arylation of aldehydes
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DOI:
10.1002/anie.200600741
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发表时间:
2006-01-01
影响因子:
16.6
通讯作者:
Walsh, Patrick J.
中科院分区:
文献类型:
--
作者:
Kim, Jeung Gon;Walsh, Patrick J.
The catalytic asymmetric addition of aryl groups to aldehydes has generated an enormous amount of attention.[1] The resulting diarylmethanols are important constituents of biologically active compounds, such as clemastine,[2] orphenadrine,[3, 4] neobenodine,[3, 4] chloropheniramine,[5, 6] cizolirtine,[7] and carbinoxamine.[8] Although the majority of enantioselective aldehyde arylation reactions rely on the use of costly diphenylzinc ($55–75 gÀ1), important advances in the use of other aryl transfer reagents, such as arylboronic acids [9, 10] and Ph2Si (OMe) 2,[11] have been reported. Although a limited number of aryl boronic acids are commercially available, they are quite expensive as well (eg, PhB (OH) 2 $225.00 molÀ1 from Aldrich). A more practical and versatile method would begin with aryl bromides, many of which are commercially available and inexpensive (compare PhBr $2.50 molÀ1 from Aldrich). There are no reports, however, of successful catalytic asymmetric aryl additions to aldehydes that begin with aryl bromides.[12, 13] Herein, we disclose a onepot method that begins with aryl bromides for the in situ generation of aryl zinc intermediates and their catalytic asymmetric addition to aldehydes to afford highly enantioenriched diarylmethanols and benzylic alcohols. We chose to examine the amino alcohol ligand MIB developed by Nugent [14, 15] in the asymmetric addition of commercial ZnPh2 to 2-naphthylaldehyde [Eq.(1)]. We were pleased to find that phenylation proceeded in toluene with 94% enantioselectivity (Table1, entry1). Unfortunately, transmetalation of phenyllithium with ZnCl2 in toluene was unsuccessful because of the insolubility of ZnCl2 in this medium. In contrast, ethereal solvents are known to promote transmetalation reactions. The asymmetric addition in diethyl ether, however, gave a low enantioselectivity (60%; Table 1, entry 2). In an attempt to balance both the solvating properties of diethyl ether, needed for the transmetalation, and the low polarity of toluene, we examined tert-butyl methyl ether (tBuOMe). A reaction mixture of commercial ZnPh2,(À)-MIB, and 2-naphthylaldehyde in tBuOMe furnished the product in 88% ee (Table 1, entry 3). A solvent system of tBuOMe and hexanes (1: 3) exhibited about the same