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- W2063495499 abstract "Because of the tremendous effort of a great number of researchers, the catalytic asymmetric dialkylzinc addition to aldehydes has become a mature method. Ligands of diverse structures have been obtained, and high enantioselectivity for all different types of aldehydes have been achieved. Among the representative excellent catalysts are compounds 1, 8, 120, 325, 352, and 360 discussed above. However, compared to the well-developed dialkylzinc addition, the catalytic asymmetric reactions of aryl-, vinyl-, and alkynylzinc reagents with aldehydes are still very much under developed. Although catalysts such as (S)-402 and 210 prepared by Pu and Bolm have shown good enantioselectivity for the reaction of diphenylzinc with certain aromatic and aliphatic aldehydes, the generality of these catalysts for other [formula: see text] arylzinc reagents have not been studied. The vinylzinc additions using ligands 1 and 412 reported by Oppolzer and Wipf were highly enantioselective for certain aromatic aldehydes but not as good for aliphatic aldehydes. Carreira discovered highly enantioselective alkynylzinc additions to aldehydes promoted by the chiral amino alcohol 415, but this process was not catalytic yet. Ishizaki achieved good enantioselectivity for the catalytic alkynylzinc addition to certain aldehydes by using compounds 160, but the enantioselectivity for simple linear aliphatic aldehydes was low. Another much less explored area is the organozinc addition to ketones. Yus and Fu showed very promising results by using ligands 381 and 406 for both dialkylzinc and diphenylzinc additions to ketones, but the scope of these reactions were still very limited. Therefore, more work is needed for the aryl-, vinyl-, and alkynylzinc additions and for the organozinc addition to ketones, although many good catalysts have been obtained for the dialkylzinc addition to aldehydes. Development of these reactions will allow the catalytic asymmetric synthesis of a great variety of functional chiral alcohols that are either the structural units or synthons of many important organic molecules as well as molecules of biological functions. Macromolecular chiral catalysts have become a very attractive research subject in recent years because these materials offer the advantages of simplified product isolation, easy recovery of the generally quite expensive chiral catalysts, and potential use for continuous production. Three types of macromolecules including flexible achiral polymers anchored with chiral catalysts, rigid and sterically regular main chain chiral polymers, and chiral dendrimers have been used for the asymmetric organozinc addition to aldehydes. Among these materials, the binaphthyl-based polymers such as (R)-451 developed by Pu have shown very high and general enantioselectivity. Study of the binaphthyl polymers in the asymmetric organozinc addition has demonstrated that it is possible to systematically modify the structure and function of the rigid and sterically regular polymer for the development of highly enantioselective polymer catalysts. The catalytic properties of highly enantioselective monomer catalysts can also be preserved in the rigid and sterically regular polymer provided the catalytically active species of the monomer catalyst is not its aggregate. The TADDOL-based polymers and dendrimers prepared by Seebach showed very high and stable enantioselectivity for the diethylzinc addition to benzaldehyde even after many cycles. These studies on macromolecular chiral catalysts demonstrate that these materials are potentially very useful for practical applications." @default.
- W2063495499 created "2016-06-24" @default.
- W2063495499 creator A5031341127 @default.
- W2063495499 creator A5085710871 @default.
- W2063495499 date "2001-03-01" @default.
- W2063495499 modified "2023-10-18" @default.
- W2063495499 title "Catalytic Asymmetric Organozinc Additions to Carbonyl Compounds" @default.
- W2063495499 cites W1964027327 @default.
- W2063495499 cites W1965453006 @default.
- W2063495499 cites W1966305276 @default.
- W2063495499 cites W1967054985 @default.
- W2063495499 cites W1967652999 @default.
- W2063495499 cites W1967700670 @default.
- W2063495499 cites W1967740597 @default.
- W2063495499 cites W1968479158 @default.
- W2063495499 cites W1969580834 @default.
- W2063495499 cites W1969758984 @default.
- W2063495499 cites W1970909881 @default.
- W2063495499 cites W1971232351 @default.
- W2063495499 cites W1971800677 @default.
- W2063495499 cites W1973551267 @default.
- W2063495499 cites W1974284642 @default.
- W2063495499 cites W1977256079 @default.
- W2063495499 cites W1977506948 @default.
- W2063495499 cites W1978734068 @default.
- W2063495499 cites W1979206151 @default.
- W2063495499 cites W1979314281 @default.
- W2063495499 cites W1981025461 @default.
- W2063495499 cites W1985551212 @default.
- W2063495499 cites W1985684423 @default.
- W2063495499 cites W1986419546 @default.
- W2063495499 cites W1989387047 @default.
- W2063495499 cites W1990296324 @default.
- W2063495499 cites W1990312389 @default.
- W2063495499 cites W1992092794 @default.
- W2063495499 cites W1993771098 @default.
- W2063495499 cites W1998321124 @default.
- W2063495499 cites W1999167629 @default.
- W2063495499 cites W1999854596 @default.
- W2063495499 cites W1999987390 @default.
- W2063495499 cites W2000201317 @default.
- W2063495499 cites W2000506097 @default.
- W2063495499 cites W2000622003 @default.
- W2063495499 cites W2002226159 @default.
- W2063495499 cites W2002722462 @default.
- W2063495499 cites W2004438981 @default.
- W2063495499 cites W2004562493 @default.
- W2063495499 cites W2005174294 @default.
- W2063495499 cites W2006038228 @default.
- W2063495499 cites W2008749459 @default.
- W2063495499 cites W2010962627 @default.
- W2063495499 cites W2011651642 @default.
- W2063495499 cites W2012789326 @default.
- W2063495499 cites W2013015539 @default.
- W2063495499 cites W2013586709 @default.
- W2063495499 cites W2015011258 @default.
- W2063495499 cites W2016659508 @default.
- W2063495499 cites W2017308117 @default.
- W2063495499 cites W2017825684 @default.
- W2063495499 cites W2018096532 @default.
- W2063495499 cites W2018406347 @default.
- W2063495499 cites W2018617375 @default.
- W2063495499 cites W2018681592 @default.
- W2063495499 cites W2020257939 @default.
- W2063495499 cites W2021874459 @default.
- W2063495499 cites W2023377597 @default.
- W2063495499 cites W2023426815 @default.
- W2063495499 cites W2023431325 @default.
- W2063495499 cites W2024168011 @default.
- W2063495499 cites W2025136071 @default.
- W2063495499 cites W2025616663 @default.
- W2063495499 cites W2026827244 @default.
- W2063495499 cites W2026967903 @default.
- W2063495499 cites W2028588213 @default.
- W2063495499 cites W2029072227 @default.
- W2063495499 cites W2029356415 @default.
- W2063495499 cites W2029495603 @default.
- W2063495499 cites W2030729394 @default.
- W2063495499 cites W2031501906 @default.
- W2063495499 cites W2032374301 @default.
- W2063495499 cites W2036524472 @default.
- W2063495499 cites W2037124632 @default.
- W2063495499 cites W2039588962 @default.
- W2063495499 cites W2040991875 @default.
- W2063495499 cites W2041066750 @default.
- W2063495499 cites W2041101669 @default.
- W2063495499 cites W2041231593 @default.
- W2063495499 cites W2041986627 @default.
- W2063495499 cites W2044903931 @default.
- W2063495499 cites W2045207666 @default.
- W2063495499 cites W2045452751 @default.
- W2063495499 cites W2045518669 @default.
- W2063495499 cites W2046669318 @default.
- W2063495499 cites W2046953717 @default.
- W2063495499 cites W2047701648 @default.
- W2063495499 cites W2047805985 @default.
- W2063495499 cites W2048311611 @default.
- W2063495499 cites W2048951718 @default.