Institute of Biomolecular Chemistry, Chemical Research Center of Hungarian Academy of Sciences, P.O. Box 17, Budapest 1525, Hungary.
Chemistry. 2012 Jan 9;18(2):574-85. doi: 10.1002/chem.201102438. Epub 2011 Dec 12.
Catalytic hydrogenation that utilizes frustrated Lewis pair (FLP) catalysts is a subject of growing interest because such catalysts offer a unique opportunity for the development of transition-metal-free hydrogenations. The aim of our recent efforts is to further increase the functional-group tolerance and chemoselectivity of FLP catalysts by means of size-exclusion catalyst design. Given that hydrogen molecule is the smallest molecule, our modified Lewis acids feature a highly shielded boron center that still allows the cleavage of the hydrogen but avoids undesirable FLP reactivity by simple physical constraint. As a result, greater latitude in substrate scope can be achieved, as exemplified by the chemoselective reduction of α,β-unsaturated imines, ketones, and quinolines. In addition to synthetic aspects, detailed NMR spectroscopic, DFT, and (2)H isotopic labeling studies were performed to gain further mechanistic insight into FLP hydrogenation.
利用受阻路易斯对(FLP)催化剂的催化氢化是一个日益受到关注的课题,因为这类催化剂为开发无过渡金属氢化反应提供了独特的机会。我们最近的努力旨在通过尺寸排阻催化剂设计进一步提高 FLP 催化剂的官能团耐受性和化学选择性。鉴于氢分子是最小的分子,我们修饰后的路易斯酸具有高度屏蔽的硼中心,仍然允许氢的断裂,但通过简单的物理约束避免了不必要的 FLP 反应性。因此,可以实现更大的底物范围,例如,α,β-不饱和亚胺、酮和喹啉的选择性还原。除了合成方面,还进行了详细的 NMR 光谱、DFT 和(2)H 同位素标记研究,以进一步深入了解 FLP 氢化的反应机理。