van de Coevering Rob, Alfers Alfred P, Meeldijk Johannes D, Martínez-Viviente Eloísa, Pregosin Paul S, Klein Gebbink Robertus J M, van Koten Gerard
Faculty of Science, Organic Chemistry and Catalysis, Utrecht University, Padualaan 8, 3584 CH Utrecht, The Netherlands.
J Am Chem Soc. 2006 Oct 4;128(39):12700-13. doi: 10.1021/ja060079t.
Ionic core-shell dendrimers with an octacationic core have been applied as noncovalent supports for homogeneous catalysts. Catalytically active arylpalladium complexes, which bear a tethered sulfato group, were noncovalently attached to the ionic core-shell dendritic supports via a straightforward ion-exchange reaction under mild conditions. Diagnostic shifts in (1)H NMR and Overhauser contacts show that the sulfato groups of the catalysts are located close to the octacationic core of the dendritic support in the resulting assemblies. The location of the catalytic Pd(II) sites has been varied via two strategies: by increasing the dendrimer generation and/or by shortening of the sulfato tether. In addition, a metallodendritic assembly was prepared, which bears an alternative shell of apolar dodecyl groups. Both the dendrimer size and the nature of the dendritic shell have no influence on the binding properties of the dendritic supports, i.e., the octacationic dendrimers of generations 1-3 form discrete 1:8 assemblies with the arylpalladium complexes. The structural aspects and the nature of the metallodendritic assemblies have been studied by means of pulse gradient spin-echo NMR diffusion methods, Overhauser spectroscopy, and electron microscopy (TEM). These techniques showed that the dendritic supports and arylpalladium complexes are strongly associated in solution to give unimolecular assemblies of nanoscopic dimensions. Membrane dialysis can recover these metallodendritic assemblies due to their nanoscopic size. The catalytic performances of the metallodendritic assemblies are comparable, but slightly lower than the performance of the unsupported catalyst.
具有八阳离子核心的离子型核壳树枝状大分子已被用作均相催化剂的非共价载体。带有连接硫酸根基团的催化活性芳基钯配合物,在温和条件下通过直接的离子交换反应非共价连接到离子型核壳树枝状载体上。¹H NMR的诊断性位移和Overhauser接触表明,在所得组装体中,催化剂的硫酸根基团位于树枝状载体的八阳离子核心附近。通过两种策略改变了催化Pd(II)位点的位置:增加树枝状大分子的代数和/或缩短硫酸根连接链。此外,制备了一种金属树枝状组装体,其带有非极性十二烷基的替代壳层。树枝状大分子的尺寸和树枝状壳层的性质对树枝状载体的结合性能均无影响,即第1 - 3代的八阳离子树枝状大分子与芳基钯配合物形成离散的1:8组装体。通过脉冲梯度自旋回波NMR扩散方法、Overhauser光谱和电子显微镜(TEM)研究了金属树枝状组装体的结构方面和性质。这些技术表明,树枝状载体和芳基钯配合物在溶液中强烈缔合,形成纳米尺寸的单分子组装体。由于其纳米尺寸,膜透析可以回收这些金属树枝状组装体。金属树枝状组装体的催化性能相当,但略低于无载体催化剂的性能。