State Key Laboratory of Fine Chemicals, Zhang Dayu College of Chemistry , Dalian University of Technology , Dalian 116024 , People's Republic of China.
Van't Hoff Institute for Molecular Sciences , University of Amsterdam , Science Park 904 , Amsterdam 1098XH , The Netherlands.
J Am Chem Soc. 2019 Aug 14;141(32):12707-12716. doi: 10.1021/jacs.9b05351. Epub 2019 Aug 1.
Switchable selective hydrogenation among the groups in multifunctional compounds is challenging because selective hydrogenation is of great interest in the synthesis of fine chemicals and pharmaceuticals as a result of the importance of key intermediates. Herein, we report a new approach to highly selectively (>99%) reducing C═X (X = O, N) over the thermodynamically more favorable nitro groups locating the substrate in a metal-organic capsule containing NADH active sites. Within the capsule, the NADH active sites reduce the double bonds via a typical 2e hydride transfer hydrogenation, and the formed excited-state NAD mimics oxidize the reductant via two consecutive 1e processes to regenerate the NADH active sites under illumination. Outside the capsule, nitro groups are highly selectively reduced through a typical 1e hydrogenation. By combining photoinduced 1e transfer regeneration outside the cage, both 1e and 2e hydrogenation can be switched controllably by varying the concentrations of the substrates and the redox potential of electron donors. This promising alternative approach, which could proceed under mild reaction conditions and use easy-to-handle hydrogen donors with enhanced high selectivity toward different groups, is based on the localization and differentiation of the 2e and 1e hydrogenation pathways inside and outside the capsules, provides a deep comprehension of photocatalytic microscopic reaction processes, and will allow the design and optimization of catalysts. We demonstrate the advantage of this method over typical hydrogenation that involves specific activation via well-modified catalytic sites and present results on the high, well-controlled, and switchable selectivity for the hydrogenation of a variety of substituted and bifunctional aldehydes, ketones, and imines.
多功能化合物中基团的可切换选择性加氢具有挑战性,因为选择性加氢在精细化学品和药物合成中非常重要,因为关键中间体的重要性。在此,我们报道了一种新方法,可高度选择性(>99%)地还原 C═X(X=O,N),而热力学上更有利的硝基基团位于含有 NADH 活性位点的金属有机胶囊中的底物。在胶囊内,NADH 活性位点通过典型的 2e 氢化物转移加氢还原双键,形成的激发态 NAD 通过两个连续的 1e 过程模拟氧化还原剂,在光照下再生 NADH 活性位点。在胶囊外,硝基基团通过典型的 1e 加氢高度选择性还原。通过在笼外光诱导 1e 转移再生相结合,可以通过改变底物浓度和电子供体的氧化还原电位来可控地切换 1e 和 2e 加氢。这种有前景的替代方法可以在温和的反应条件下进行,并且可以使用易于处理的氢供体,对不同基团具有增强的高选择性,这基于胶囊内外 2e 和 1e 加氢途径的定位和分化,提供了对光催化微观反应过程的深刻理解,并将允许设计和优化催化剂。我们展示了这种方法相对于涉及通过经过良好修饰的催化位点进行特定激活的典型加氢的优势,并提供了各种取代和双功能醛、酮和亚胺加氢的高、良好控制和可切换选择性的结果。