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通往实用伯醇脱氧的途径。

En Route to a Practical Primary Alcohol Deoxygenation.

机构信息

Department of Chemistry and FQRNT Center for Green Chemistry and Catalysis, McGill University , 801 Sherbooke Street West, Montreal, Quebec H3A 0B8, Canada.

出版信息

J Am Chem Soc. 2016 Apr 27;138(16):5433-40. doi: 10.1021/jacs.6b02344. Epub 2016 Apr 18.

Abstract

A long-standing scientific challenge in the field of alcohol deoxygenation has been direct catalytic sp(3) C-O defunctionalization with high selectivity and efficiency, in the presence of other functionalities, such as free hydroxyl groups and amines widely present in biological molecules. Previously, the selectivity issue had been only addressed by classic multistep deoxygenation strategies with stoichiometric reagents. Herein, we propose a catalytic late-transition-metal-catalyzed redox design, on the basis of dehydrogenation/Wolff-Kishner (WK) reduction, to simultaneously tackle the challenges regarding step economy and selectivity. The early development of our hypothesis focuses on an iridium-catalyzed process efficient mainly with activated alcohols, which dictates harsh reaction conditions and thus limits its synthetic utility. Later, a significant advancement has been made on aliphatic primary alcohol deoxygenation by employing a ruthenium complex, with good functional group tolerance and exclusive selectivity under practical reaction conditions. Its synthetic utility is further illustrated by excellent efficiency as well as complete chemo- and regio-selectivity in both simple and complex molecular settings. Mechanistic discussion is also included with experimental supports. Overall, our current method successfully addresses the aforementioned challenges in the pertinent field, providing a practical redox-based approach to the direct sp(3) C-O defunctionalization of aliphatic primary alcohols.

摘要

在醇脱氧领域,长期存在的科学挑战是在存在其他官能团(如生物分子中广泛存在的游离羟基和胺)的情况下,实现高选择性和高效率的直接催化 sp(3) C-O 去官能化。以前,选择性问题仅通过使用化学计量试剂的经典多步脱氧策略来解决。在此,我们提出了一种基于脱氢/Wolff-Kishner (WK) 还原的催化后过渡金属催化氧化还原设计,以同时解决步骤经济性和选择性方面的挑战。我们假设的早期发展主要集中在铱催化的有效过程中,该过程主要针对活化醇,这需要苛刻的反应条件,因此限制了其合成实用性。后来,通过使用钌配合物,在实际反应条件下具有良好的官能团耐受性和独特的选择性,在脂肪伯醇脱氧方面取得了重大进展。其合成实用性还通过在简单和复杂分子环境中都具有出色的效率以及完全的化学和区域选择性得到了进一步证明。还包括了与实验支持的机理讨论。总体而言,我们目前的方法成功地解决了相关领域中的上述挑战,为脂肪伯醇的直接 sp(3) C-O 去官能化提供了一种实用的基于氧化还原的方法。

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