Chemoselective Catalysis with Organosoluble Lewis Acidic Polyoxotungstates

被引:95
作者
Dupre, Nathalie [1 ]
Remy, Pauline [1 ]
Micoine, Kevin [1 ]
Boglio, Cecile [1 ]
Thorimbert, Serge [1 ]
Lacote, Emmanuel [1 ]
Hasenknopf, Bernold [1 ]
Malacria, Max [1 ]
机构
[1] Univ Paris 06, Inst Parisien Chim Mol, UMR 7201, F-75005 Paris, France
关键词
aldol reaction; imines; Lewis acids; polyoxometalates; MONOVACANT WELLS-DAWSON; HIGHLY EFFICIENT; CHIRAL POLYOXOTUNGSTATES; LANTHANIDE COMPLEXES; ALLYLIC ALCOHOLS; IONIC-RADII; METAL-OXIDE; POLYOXOMETALATE; EPOXIDATION; WATER;
D O I
10.1002/chem.201000411
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The preparation of new organosoluble Lewis acidic polyoxometalates (POMs) is reported. These complexes were prepared by the incorporation of Zr, Sc, and Y atoms into the corresponding monolacunary Dawson [P2W17O61](10-) and Keggin [PW11O39](7-) polyoxotungstates. The catalytic activity of these compounds was evaluated for C-C bond formation in the Diels-Alder, Mannich, and Mukaiyama-type reactions. Comparisons with previously described Lewis acidic POMs are reported. Competitive reactions between imines and aldehydes or between various imines demonstrated that fine tuning of the reactivity could be reached by varying the metal atom incorporated into the polyanionic framework. A series of experiments that employed pyridine derivatives allowed us to distinguish between the Lewis and induced Bronsted acidity of the POMs. These catalysts activate imines in a Lewis acidic way, whereas aldehydes are activated by indirect Bronsted catalysis.
引用
收藏
页码:7256 / 7264
页数:9
相关论文
共 63 条
[1]   Chiral hydroperoxides as oxygen source in the catalytic stereoselective epoxidation of allylic alcohols by sandwich-type polyoxometalates:: Control of enantioselectivity through a metal-coordinated template [J].
Adam, W ;
Alsters, PL ;
Neumann, R ;
Saha-Möller, CR ;
Seebach, D ;
Beck, AK ;
Zhang, R .
JOURNAL OF ORGANIC CHEMISTRY, 2003, 68 (21) :8222-8231
[2]   Highly efficient catalytic asymmetric epoxidation of allylic alcohols by an oxovanadium-substituted polyoxometalate with a regenerative TADDOL-derived hydroperoxide [J].
Adam, W ;
Alsters, PL ;
Neumann, R ;
Saha-Möller, CR ;
Seebach, D ;
Zhang, R .
ORGANIC LETTERS, 2003, 5 (05) :725-728
[3]   RETRACTED: A late-transition metal oxo complex: K7Na9[O=PtIV(H2O)L2]. L = [PW9O34]9- (Retracted Article) [J].
Anderson, TM ;
Neiwert, WA ;
Kirk, ML ;
Piccoli, PMB ;
Schultz, AJ ;
Koetzle, TF ;
Musaev, DG ;
Morokuma, K ;
Cao, R ;
Hill, CL .
SCIENCE, 2004, 306 (5704) :2074-2077
[4]   A new method for the synthesis of organopolyoxometalate hybrid compounds [J].
Bar-Nahum, Itsik ;
Ettedgui, Jessica ;
Konstantinovski, Leonid ;
Kogan, Vladimir ;
Neumann, Ronny .
INORGANIC CHEMISTRY, 2007, 46 (14) :5798-5804
[5]   Highly efficient peptide bond formation to functionalized Wells-Dawson-type polyoxotungstates [J].
Bareyt, S ;
Piligkos, S ;
Hasenknopf, B ;
Gouzerh, P ;
Lacôte, E ;
Thorimbert, S ;
Malacria, M .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2003, 42 (29) :3404-3406
[6]   Efficient preparation of functionalized hybrid organic/inorganic Wells- Dawson-type polyoxotungstates [J].
Bareyt, S ;
Piligkos, S ;
Hasenknopf, B ;
Gouzerh, P ;
Lacôte, E ;
Thorimbert, S ;
Malacria, M .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2005, 127 (18) :6788-6794
[7]  
Bareyt S., 2003, ANGEW CHEM, V115, P3526
[8]   6-peroxo-6-zirconium crown and its hafnium analogue embedded in a. triangular polyanion:: [M6(O2)6(OH)6(γ-SiW10O36)3]18 (M = zr, hf) [J].
Bassil, Bassem S. ;
Mal, Sib Sankar ;
Dickman, Michael H. ;
Kortz, Ulrich ;
Oelrich, Holger ;
Walder, Lorenz .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2008, 130 (21) :6696-+
[9]   Production and reactions of organic-soluble lanthanide complexes of the monolacunary Dawson [α1-P2W17O61]10- polyoxotungstate [J].
Boglio, C ;
Lenoble, G ;
Duhayon, C ;
Hasenknopf, B ;
Thouvenot, R ;
Zhang, C ;
Howell, RC ;
Burton-Pye, BP ;
Francesconi, LC ;
Lacôte, E ;
Thorimbert, S ;
Malacria, M ;
Afonso, C ;
Tabet, JC .
INORGANIC CHEMISTRY, 2006, 45 (03) :1389-1398
[10]  
Boglio C., 2006, ANGEW CHEM, V118, P3402, DOI DOI 10.1002/(ISSN)1521-3757