Me2AlCH2PMe2:: A new, bifunctional cocatalyst for the Ni(II)-catalyzed oligomerization of PhSiH3

被引:105
作者
Fontaine, FG [1 ]
Zargarian, D [1 ]
机构
[1] Univ Montreal, Dept Chim, Montreal, PQ H3C 3J7, Canada
关键词
D O I
10.1021/ja048911m
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The role of methylaluminoxane (MAO) in the Ni-catalyzed dehydrogenative homologation of PhSiH3 has been investigated with a view to designing new cocatalysts possessing well-defined chemical compositions and structures. These studies show that species such as the bifunctional reagent (Me2PCH2AlMe2)(2), 3, should act as co-catalyst for the Si-Si bond formation reactions. Thus, it was found that the combination of (1-Me-indenyl)Ni(PPh3)Me, 2a, and 3 (Ni/Al ratio of 1:1) converts PhSiH3 to cyclic oligomers (PhSiH)(n) with a turnover frequency (TOF) of >500 h(-1), 50 times faster than with 2a alone. Detailed NMR studies have indicated that this acceleration is due to the formation of the intermediate (1-Me-indenyl)Ni(Me)(Me2PCH2AlMe2), 4. Coordination of the PMe2 moiety in this complex to the Ni center allows the tethered AlMe2 moiety to interact with the Ni-Me moiety in such a way that promotes fairly slow Al-Me/Ni-CD3 exchange (t(1/2) ca. 12 h) but accelerates the Si-H bond activation and Si-Si bond formation reactions. The catalysis promoted by 2a/3 proceeds even faster in the presence of NEt3 or THF (TOF > 1600 h(-1)), because these Lewis bases favor the monomeric form of 3, which in turn favors the formation of 4. On the other hand, the much more nucleophilic base quinuclidine suppresses the catalysis (TOF < 300 h(-1)) by hindering the Ni...R...Al interactions. These observations point to an emerging strategy for using bifunctional reagents such as 3 to place geometrically constrained Lewis acid moieties adjacent to metal centers, thereby activating certain metal-ligand bonds.
引用
收藏
页码:8786 / 8794
页数:9
相关论文
共 78 条
[1]   POLYMERIZATION OF PRIMARY SILANES TO LINEAR POLYSILANES CATALYZED BY TITANOCENE DERIVATIVES [J].
AITKEN, C ;
HARROD, JF ;
SAMUEL, E .
JOURNAL OF ORGANOMETALLIC CHEMISTRY, 1985, 279 (1-2) :C11-C13
[2]   SYNTHESIS AND STRUCTURAL CHARACTERIZATION OF AN UNUSUAL SILYLZIRCONIUM HYDRIDE COMPLEX [J].
AITKEN, C ;
HARROD, JF ;
SAMUEL, E .
CANADIAN JOURNAL OF CHEMISTRY-REVUE CANADIENNE DE CHIMIE, 1986, 64 (08) :1677-1679
[3]   A SURVEY OF CATALYTIC ACTIVITY OF ETA-5-CYCLOPENTADIENYL COMPLEXES OF GROUPS 4-6 AND URANIUM AND THORIUM FOR THE DEHYDROCOUPLING OF PHENYLSILANE [J].
AITKEN, C ;
BARRY, JP ;
GAUVIN, F ;
HARROD, JF ;
MALEK, A ;
ROUSSEAU, D .
ORGANOMETALLICS, 1989, 8 (07) :1732-1736
[4]   STRUCTURAL STUDIES OF OLIGOSILANES PRODUCED BY CATALYTIC DEHYDROGENATIVE COUPLING OF PRIMARY ORGANOSILANES [J].
AITKEN, C ;
HARROD, JF ;
GILL, US .
CANADIAN JOURNAL OF CHEMISTRY, 1987, 65 (08) :1804-1809
[5]   IDENTIFICATION OF SOME INTERMEDIATES IN THE TITANOCENE-CATALYZED DEHYDROGENATIVE COUPLING OF PRIMARY ORGANOSILANES [J].
AITKEN, CT ;
HARROD, JF ;
SAMUEL, E .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1986, 108 (14) :4059-4066
[6]  
[Anonymous], COMMENTS INORG CHEM, DOI 10.1080/02603599008048649
[7]   DEHYDROGENATIVE COUPLING OF SUBSTITUTED PHENYLSILANES - SYNTHESIS OF POLY[((TRIFLUOROMETHYL)PHENYL)SILANES] [J].
BANOVETZ, JP ;
SUZUKI, H ;
WAYMOUTH, RM .
ORGANOMETALLICS, 1993, 12 (11) :4700-4703
[8]   STEREOSELECTIVITY IN THE CATALYTIC OLIGOMERIZATION OF PHENYLSILANE [J].
BANOVETZ, JP ;
STEIN, KM ;
WAYMOUTH, RM .
ORGANOMETALLICS, 1991, 10 (10) :3430-3432
[9]   Mechanistic studies on the B(C6F5)3 catalyzed allylstannation of aromatic aldehydes with ortho donor substituents [J].
Blackwell, JM ;
Piers, WE ;
McDonald, R .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2002, 124 (07) :1295-1306
[10]   MONOMER-DIMER EQUILIBRIA IN HOMODINUCLEAR AND HETERODINUCLEAR CATIONIC ALKYLZIRCONIUM COMPLEXES AND THEIR ROLE IN POLYMERIZATION CATALYSIS [J].
BOCHMANN, M ;
LANCASTER, SJ .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 1994, 33 (15-16) :1634-1637